1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * Driver for OHCI 1394 controllers
4 *
5 * Copyright (C) 2003-2006 Kristian Hoegsberg <krh@bitplanet.net>
6 */
7
8 #include <linux/bitops.h>
9 #include <linux/bug.h>
10 #include <linux/compiler.h>
11 #include <linux/delay.h>
12 #include <linux/device.h>
13 #include <linux/dma-mapping.h>
14 #include <linux/firewire.h>
15 #include <linux/firewire-constants.h>
16 #include <linux/init.h>
17 #include <linux/interrupt.h>
18 #include <linux/io.h>
19 #include <linux/kernel.h>
20 #include <linux/list.h>
21 #include <linux/mm.h>
22 #include <linux/module.h>
23 #include <linux/moduleparam.h>
24 #include <linux/mutex.h>
25 #include <linux/pci.h>
26 #include <linux/pci_ids.h>
27 #include <linux/slab.h>
28 #include <linux/spinlock.h>
29 #include <linux/string.h>
30 #include <linux/time.h>
31 #include <linux/vmalloc.h>
32 #include <linux/workqueue.h>
33
34 #include <asm/byteorder.h>
35 #include <asm/page.h>
36
37 #ifdef CONFIG_PPC_PMAC
38 #include <asm/pmac_feature.h>
39 #endif
40
41 #include "core.h"
42 #include "ohci.h"
43 #include "packet-header-definitions.h"
44 #include "phy-packet-definitions.h"
45
46 #include <trace/events/firewire.h>
47
48 static u32 cond_le32_to_cpu(__le32 value, bool has_be_header_quirk);
49
50 #define CREATE_TRACE_POINTS
51 #include <trace/events/firewire_ohci.h>
52
53 #define ohci_notice(ohci, f, args...) dev_notice(ohci->card.device, f, ##args)
54 #define ohci_err(ohci, f, args...) dev_err(ohci->card.device, f, ##args)
55
56 #define DESCRIPTOR_OUTPUT_MORE 0
57 #define DESCRIPTOR_OUTPUT_LAST (1 << 12)
58 #define DESCRIPTOR_INPUT_MORE (2 << 12)
59 #define DESCRIPTOR_INPUT_LAST (3 << 12)
60 #define DESCRIPTOR_STATUS (1 << 11)
61 #define DESCRIPTOR_KEY_IMMEDIATE (2 << 8)
62 #define DESCRIPTOR_PING (1 << 7)
63 #define DESCRIPTOR_YY (1 << 6)
64 #define DESCRIPTOR_NO_IRQ (0 << 4)
65 #define DESCRIPTOR_IRQ_ERROR (1 << 4)
66 #define DESCRIPTOR_IRQ_ALWAYS (3 << 4)
67 #define DESCRIPTOR_BRANCH_ALWAYS (3 << 2)
68 #define DESCRIPTOR_WAIT (3 << 0)
69
70 #define DESCRIPTOR_CMD (0xf << 12)
71
72 struct descriptor {
73 __le16 req_count;
74 __le16 control;
75 __le32 data_address;
76 __le32 branch_address;
77 __le16 res_count;
78 __le16 transfer_status;
79 } __aligned(16);
80
81 #define CONTROL_SET(regs) (regs)
82 #define CONTROL_CLEAR(regs) ((regs) + 4)
83 #define COMMAND_PTR(regs) ((regs) + 12)
84 #define CONTEXT_MATCH(regs) ((regs) + 16)
85
86 #define AR_BUFFER_SIZE (32*1024)
87 #define AR_BUFFERS_MIN DIV_ROUND_UP(AR_BUFFER_SIZE, PAGE_SIZE)
88 /* we need at least two pages for proper list management */
89 #define AR_BUFFERS MAX(2, AR_BUFFERS_MIN)
90
91 #define MAX_ASYNC_PAYLOAD 4096
92 #define MAX_AR_PACKET_SIZE (16 + MAX_ASYNC_PAYLOAD + 4)
93 #define AR_WRAPAROUND_PAGES DIV_ROUND_UP(MAX_AR_PACKET_SIZE, PAGE_SIZE)
94
95 struct ar_context {
96 struct fw_ohci *ohci;
97 struct page *pages[AR_BUFFERS];
98 void *buffer;
99 dma_addr_t dma_addrs[AR_BUFFERS];
100 struct descriptor *descriptors;
101 dma_addr_t descriptors_bus;
102 void *pointer;
103 unsigned int last_buffer_index;
104 u32 regs;
105 struct work_struct work;
106 };
107
108 struct context;
109
110 typedef int (*descriptor_callback_t)(struct context *ctx,
111 struct descriptor *d,
112 struct descriptor *last);
113
114 /*
115 * A buffer that contains a block of DMA-able coherent memory used for
116 * storing a portion of a DMA descriptor program.
117 */
118 struct descriptor_buffer {
119 struct list_head list;
120 dma_addr_t buffer_bus;
121 size_t buffer_size;
122 size_t used;
123 struct descriptor buffer[];
124 };
125
126 struct context {
127 struct fw_ohci *ohci;
128 u32 regs;
129 int total_allocation;
130 u32 current_bus;
131 bool running;
132
133 /*
134 * List of page-sized buffers for storing DMA descriptors.
135 * Head of list contains buffers in use and tail of list contains
136 * free buffers.
137 */
138 struct list_head buffer_list;
139
140 /*
141 * Pointer to a buffer inside buffer_list that contains the tail
142 * end of the current DMA program.
143 */
144 struct descriptor_buffer *buffer_tail;
145
146 /*
147 * The descriptor containing the branch address of the first
148 * descriptor that has not yet been filled by the device.
149 */
150 struct descriptor *last;
151
152 /*
153 * The last descriptor block in the DMA program. It contains the branch
154 * address that must be updated upon appending a new descriptor.
155 */
156 struct descriptor *prev;
157 int prev_z;
158
159 descriptor_callback_t callback;
160 };
161
162 struct at_context {
163 struct context context;
164 struct work_struct work;
165 bool flushing;
166 };
167
168 struct iso_context {
169 struct fw_iso_context base;
170 struct context context;
171 unsigned long flushing_completions;
172 u8 sync;
173 u8 tags;
174 union {
175 struct {
176 u16 last_timestamp;
177 size_t header_length;
178 void *header;
179 } sc;
180 struct {
181 u32 buffer_bus;
182 u16 completed;
183 } mc;
184 };
185 };
186
187 #define CONFIG_ROM_SIZE (CSR_CONFIG_ROM_END - CSR_CONFIG_ROM)
188
189 struct fw_ohci {
190 struct fw_card card;
191
192 __iomem char *registers;
193 int node_id;
194 int generation;
195 int request_generation; /* for timestamping incoming requests */
196 unsigned quirks;
197 unsigned int pri_req_max;
198 u32 bus_time;
199 bool bus_time_running;
200 bool is_root;
201 bool csr_state_setclear_abdicate;
202 int n_ir;
203 int n_it;
204 /*
205 * Spinlock for accessing fw_ohci data. Never call out of
206 * this driver with this lock held.
207 */
208 spinlock_t lock;
209
210 struct mutex phy_reg_mutex;
211
212 void *misc_buffer;
213 dma_addr_t misc_buffer_bus;
214
215 struct ar_context ar_request_ctx;
216 struct ar_context ar_response_ctx;
217 struct at_context at_request_ctx;
218 struct at_context at_response_ctx;
219
220 u32 it_context_support;
221 u32 it_context_mask; /* unoccupied IT contexts */
222 struct iso_context *it_context_list;
223 u64 ir_context_channels; /* unoccupied channels */
224 u32 ir_context_support;
225 u32 ir_context_mask; /* unoccupied IR contexts */
226 struct iso_context *ir_context_list;
227 u64 mc_channels; /* channels in use by the multichannel IR context */
228 bool mc_allocated;
229
230 __be32 *config_rom;
231 dma_addr_t config_rom_bus;
232 __be32 *next_config_rom;
233 dma_addr_t next_config_rom_bus;
234 __be32 next_header;
235
236 __le32 *self_id;
237 dma_addr_t self_id_bus;
238
239 u32 self_id_buffer[512];
240 };
241
fw_ohci(struct fw_card * card)242 static inline struct fw_ohci *fw_ohci(struct fw_card *card)
243 {
244 return container_of(card, struct fw_ohci, card);
245 }
246
247 #define IT_CONTEXT_CYCLE_MATCH_ENABLE 0x80000000
248 #define IR_CONTEXT_BUFFER_FILL 0x80000000
249 #define IR_CONTEXT_ISOCH_HEADER 0x40000000
250 #define IR_CONTEXT_CYCLE_MATCH_ENABLE 0x20000000
251 #define IR_CONTEXT_MULTI_CHANNEL_MODE 0x10000000
252 #define IR_CONTEXT_DUAL_BUFFER_MODE 0x08000000
253
254 #define CONTEXT_RUN 0x8000
255 #define CONTEXT_WAKE 0x1000
256 #define CONTEXT_DEAD 0x0800
257 #define CONTEXT_ACTIVE 0x0400
258
259 #define OHCI1394_MAX_AT_REQ_RETRIES 0xf
260 #define OHCI1394_MAX_AT_RESP_RETRIES 0x2
261 #define OHCI1394_MAX_PHYS_RESP_RETRIES 0x8
262
263 #define OHCI1394_REGISTER_SIZE 0x800
264 #define OHCI1394_PCI_HCI_Control 0x40
265 #define SELF_ID_BUF_SIZE 0x800
266 #define OHCI_VERSION_1_1 0x010010
267
268 static char ohci_driver_name[] = KBUILD_MODNAME;
269
270 #define PCI_VENDOR_ID_PINNACLE_SYSTEMS 0x11bd
271 #define PCI_DEVICE_ID_AGERE_FW643 0x5901
272 #define PCI_DEVICE_ID_CREATIVE_SB1394 0x4001
273 #define PCI_DEVICE_ID_JMICRON_JMB38X_FW 0x2380
274 #define PCI_DEVICE_ID_TI_TSB12LV22 0x8009
275 #define PCI_DEVICE_ID_TI_TSB12LV26 0x8020
276 #define PCI_DEVICE_ID_TI_TSB82AA2 0x8025
277 #define PCI_DEVICE_ID_VIA_VT630X 0x3044
278 #define PCI_REV_ID_VIA_VT6306 0x46
279 #define PCI_DEVICE_ID_VIA_VT6315 0x3403
280
281 #define QUIRK_CYCLE_TIMER 0x1
282 #define QUIRK_RESET_PACKET 0x2
283 #define QUIRK_BE_HEADERS 0x4
284 #define QUIRK_NO_1394A 0x8
285 #define QUIRK_NO_MSI 0x10
286 #define QUIRK_TI_SLLZ059 0x20
287 #define QUIRK_IR_WAKE 0x40
288
289 // On PCI Express Root Complex in any type of AMD Ryzen machine, VIA VT6306/6307/6308 with Asmedia
290 // ASM1083/1085 brings an inconvenience that the read accesses to 'Isochronous Cycle Timer' register
291 // (at offset 0xf0 in PCI I/O space) often causes unexpected system reboot. The mechanism is not
292 // clear, since the read access to the other registers is enough safe; e.g. 'Node ID' register,
293 // while it is probable due to detection of any type of PCIe error.
294 #define QUIRK_REBOOT_BY_CYCLE_TIMER_READ 0x80000000
295
296 #if IS_ENABLED(CONFIG_X86)
297
has_reboot_by_cycle_timer_read_quirk(const struct fw_ohci * ohci)298 static bool has_reboot_by_cycle_timer_read_quirk(const struct fw_ohci *ohci)
299 {
300 return !!(ohci->quirks & QUIRK_REBOOT_BY_CYCLE_TIMER_READ);
301 }
302
303 #define PCI_DEVICE_ID_ASMEDIA_ASM108X 0x1080
304
detect_vt630x_with_asm1083_on_amd_ryzen_machine(const struct pci_dev * pdev)305 static bool detect_vt630x_with_asm1083_on_amd_ryzen_machine(const struct pci_dev *pdev)
306 {
307 const struct pci_dev *pcie_to_pci_bridge;
308
309 // Detect any type of AMD Ryzen machine.
310 if (!cpu_feature_enabled(X86_FEATURE_ZEN))
311 return false;
312
313 // Detect VIA VT6306/6307/6308.
314 if (pdev->vendor != PCI_VENDOR_ID_VIA)
315 return false;
316 if (pdev->device != PCI_DEVICE_ID_VIA_VT630X)
317 return false;
318
319 // Detect Asmedia ASM1083/1085.
320 pcie_to_pci_bridge = pdev->bus->self;
321 if (pcie_to_pci_bridge->vendor != PCI_VENDOR_ID_ASMEDIA)
322 return false;
323 if (pcie_to_pci_bridge->device != PCI_DEVICE_ID_ASMEDIA_ASM108X)
324 return false;
325
326 return true;
327 }
328
329 #else
330 #define has_reboot_by_cycle_timer_read_quirk(ohci) false
331 #define detect_vt630x_with_asm1083_on_amd_ryzen_machine(pdev) false
332 #endif
333
334 /* In case of multiple matches in ohci_quirks[], only the first one is used. */
335 static const struct {
336 unsigned short vendor, device, revision, flags;
337 } ohci_quirks[] = {
338 {PCI_VENDOR_ID_AL, PCI_ANY_ID, PCI_ANY_ID,
339 QUIRK_CYCLE_TIMER},
340
341 {PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_FW, PCI_ANY_ID,
342 QUIRK_BE_HEADERS},
343
344 {PCI_VENDOR_ID_ATT, PCI_DEVICE_ID_AGERE_FW643, 6,
345 QUIRK_NO_MSI},
346
347 {PCI_VENDOR_ID_CREATIVE, PCI_DEVICE_ID_CREATIVE_SB1394, PCI_ANY_ID,
348 QUIRK_RESET_PACKET},
349
350 {PCI_VENDOR_ID_JMICRON, PCI_DEVICE_ID_JMICRON_JMB38X_FW, PCI_ANY_ID,
351 QUIRK_NO_MSI},
352
353 {PCI_VENDOR_ID_NEC, PCI_ANY_ID, PCI_ANY_ID,
354 QUIRK_CYCLE_TIMER},
355
356 {PCI_VENDOR_ID_O2, PCI_ANY_ID, PCI_ANY_ID,
357 QUIRK_NO_MSI},
358
359 {PCI_VENDOR_ID_RICOH, PCI_ANY_ID, PCI_ANY_ID,
360 QUIRK_CYCLE_TIMER | QUIRK_NO_MSI},
361
362 {PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_TSB12LV22, PCI_ANY_ID,
363 QUIRK_CYCLE_TIMER | QUIRK_RESET_PACKET | QUIRK_NO_1394A},
364
365 {PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_TSB12LV26, PCI_ANY_ID,
366 QUIRK_RESET_PACKET | QUIRK_TI_SLLZ059},
367
368 {PCI_VENDOR_ID_TI, PCI_DEVICE_ID_TI_TSB82AA2, PCI_ANY_ID,
369 QUIRK_RESET_PACKET | QUIRK_TI_SLLZ059},
370
371 {PCI_VENDOR_ID_TI, PCI_ANY_ID, PCI_ANY_ID,
372 QUIRK_RESET_PACKET},
373
374 {PCI_VENDOR_ID_VIA, PCI_DEVICE_ID_VIA_VT630X, PCI_REV_ID_VIA_VT6306,
375 QUIRK_CYCLE_TIMER | QUIRK_IR_WAKE},
376
377 {PCI_VENDOR_ID_VIA, PCI_DEVICE_ID_VIA_VT6315, 0,
378 QUIRK_CYCLE_TIMER /* FIXME: necessary? */ | QUIRK_NO_MSI},
379
380 {PCI_VENDOR_ID_VIA, PCI_DEVICE_ID_VIA_VT6315, PCI_ANY_ID,
381 QUIRK_NO_MSI},
382
383 {PCI_VENDOR_ID_VIA, PCI_ANY_ID, PCI_ANY_ID,
384 QUIRK_CYCLE_TIMER | QUIRK_NO_MSI},
385 };
386
387 /* This overrides anything that was found in ohci_quirks[]. */
388 static int param_quirks;
389 module_param_named(quirks, param_quirks, int, 0644);
390 MODULE_PARM_DESC(quirks, "Chip quirks (default = 0"
391 ", nonatomic cycle timer = " __stringify(QUIRK_CYCLE_TIMER)
392 ", reset packet generation = " __stringify(QUIRK_RESET_PACKET)
393 ", AR/selfID endianness = " __stringify(QUIRK_BE_HEADERS)
394 ", no 1394a enhancements = " __stringify(QUIRK_NO_1394A)
395 ", disable MSI = " __stringify(QUIRK_NO_MSI)
396 ", TI SLLZ059 erratum = " __stringify(QUIRK_TI_SLLZ059)
397 ", IR wake unreliable = " __stringify(QUIRK_IR_WAKE)
398 ")");
399
400 static bool param_remote_dma;
401 module_param_named(remote_dma, param_remote_dma, bool, 0444);
402 MODULE_PARM_DESC(remote_dma, "Enable unfiltered remote DMA (default = N)");
403
reg_write(const struct fw_ohci * ohci,int offset,u32 data)404 static inline void reg_write(const struct fw_ohci *ohci, int offset, u32 data)
405 {
406 writel(data, ohci->registers + offset);
407 }
408
reg_read(const struct fw_ohci * ohci,int offset)409 static inline u32 reg_read(const struct fw_ohci *ohci, int offset)
410 {
411 return readl(ohci->registers + offset);
412 }
413
flush_writes(const struct fw_ohci * ohci)414 static inline void flush_writes(const struct fw_ohci *ohci)
415 {
416 /* Do a dummy read to flush writes. */
417 reg_read(ohci, OHCI1394_Version);
418 }
419
420 /*
421 * Beware! read_phy_reg(), write_phy_reg(), update_phy_reg(), and
422 * read_paged_phy_reg() require the caller to hold ohci->phy_reg_mutex.
423 * In other words, only use ohci_read_phy_reg() and ohci_update_phy_reg()
424 * directly. Exceptions are intrinsically serialized contexts like pci_probe.
425 */
read_phy_reg(struct fw_ohci * ohci,int addr)426 static int read_phy_reg(struct fw_ohci *ohci, int addr)
427 {
428 u32 val;
429 int i;
430
431 reg_write(ohci, OHCI1394_PhyControl, OHCI1394_PhyControl_Read(addr));
432 for (i = 0; i < 3 + 100; i++) {
433 val = reg_read(ohci, OHCI1394_PhyControl);
434 if (!~val)
435 return -ENODEV; /* Card was ejected. */
436
437 if (val & OHCI1394_PhyControl_ReadDone)
438 return OHCI1394_PhyControl_ReadData(val);
439
440 /*
441 * Try a few times without waiting. Sleeping is necessary
442 * only when the link/PHY interface is busy.
443 */
444 if (i >= 3)
445 msleep(1);
446 }
447 ohci_err(ohci, "failed to read phy reg %d\n", addr);
448 dump_stack();
449
450 return -EBUSY;
451 }
452
write_phy_reg(const struct fw_ohci * ohci,int addr,u32 val)453 static int write_phy_reg(const struct fw_ohci *ohci, int addr, u32 val)
454 {
455 int i;
456
457 reg_write(ohci, OHCI1394_PhyControl,
458 OHCI1394_PhyControl_Write(addr, val));
459 for (i = 0; i < 3 + 100; i++) {
460 val = reg_read(ohci, OHCI1394_PhyControl);
461 if (!~val)
462 return -ENODEV; /* Card was ejected. */
463
464 if (!(val & OHCI1394_PhyControl_WritePending))
465 return 0;
466
467 if (i >= 3)
468 msleep(1);
469 }
470 ohci_err(ohci, "failed to write phy reg %d, val %u\n", addr, val);
471 dump_stack();
472
473 return -EBUSY;
474 }
475
update_phy_reg(struct fw_ohci * ohci,int addr,int clear_bits,int set_bits)476 static int update_phy_reg(struct fw_ohci *ohci, int addr,
477 int clear_bits, int set_bits)
478 {
479 int ret = read_phy_reg(ohci, addr);
480 if (ret < 0)
481 return ret;
482
483 /*
484 * The interrupt status bits are cleared by writing a one bit.
485 * Avoid clearing them unless explicitly requested in set_bits.
486 */
487 if (addr == 5)
488 clear_bits |= PHY_INT_STATUS_BITS;
489
490 return write_phy_reg(ohci, addr, (ret & ~clear_bits) | set_bits);
491 }
492
read_paged_phy_reg(struct fw_ohci * ohci,int page,int addr)493 static int read_paged_phy_reg(struct fw_ohci *ohci, int page, int addr)
494 {
495 int ret;
496
497 ret = update_phy_reg(ohci, 7, PHY_PAGE_SELECT, page << 5);
498 if (ret < 0)
499 return ret;
500
501 return read_phy_reg(ohci, addr);
502 }
503
ohci_read_phy_reg(struct fw_card * card,int addr)504 static int ohci_read_phy_reg(struct fw_card *card, int addr)
505 {
506 struct fw_ohci *ohci = fw_ohci(card);
507
508 guard(mutex)(&ohci->phy_reg_mutex);
509
510 return read_phy_reg(ohci, addr);
511 }
512
ohci_update_phy_reg(struct fw_card * card,int addr,int clear_bits,int set_bits)513 static int ohci_update_phy_reg(struct fw_card *card, int addr,
514 int clear_bits, int set_bits)
515 {
516 struct fw_ohci *ohci = fw_ohci(card);
517
518 guard(mutex)(&ohci->phy_reg_mutex);
519
520 return update_phy_reg(ohci, addr, clear_bits, set_bits);
521 }
522
ar_context_link_page(struct ar_context * ctx,unsigned int index)523 static void ar_context_link_page(struct ar_context *ctx, unsigned int index)
524 {
525 struct descriptor *d;
526
527 d = &ctx->descriptors[index];
528 d->branch_address &= cpu_to_le32(~0xf);
529 d->res_count = cpu_to_le16(PAGE_SIZE);
530 d->transfer_status = 0;
531
532 wmb(); /* finish init of new descriptors before branch_address update */
533 d = &ctx->descriptors[ctx->last_buffer_index];
534 d->branch_address |= cpu_to_le32(1);
535
536 ctx->last_buffer_index = index;
537
538 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_WAKE);
539 }
540
ar_context_release(struct ar_context * ctx)541 static void ar_context_release(struct ar_context *ctx)
542 {
543 struct device *dev;
544
545 if (!ctx->buffer)
546 return;
547
548 dev = ctx->ohci->card.device;
549
550 for (int i = 0; i < AR_BUFFERS; ++i) {
551 dma_addr_t dma_addr = ctx->dma_addrs[i];
552 if (dma_addr)
553 dma_unmap_page(dev, dma_addr, PAGE_SIZE, DMA_FROM_DEVICE);
554 }
555 memset(ctx->dma_addrs, 0, sizeof(ctx->dma_addrs));
556
557 vunmap(ctx->buffer);
558 ctx->buffer = NULL;
559
560 release_pages(ctx->pages, AR_BUFFERS);
561 memset(ctx->pages, 0, sizeof(ctx->pages));
562 }
563
ar_context_abort(struct ar_context * ctx,const char * error_msg)564 static void ar_context_abort(struct ar_context *ctx, const char *error_msg)
565 {
566 struct fw_ohci *ohci = ctx->ohci;
567
568 if (reg_read(ohci, CONTROL_CLEAR(ctx->regs)) & CONTEXT_RUN) {
569 reg_write(ohci, CONTROL_CLEAR(ctx->regs), CONTEXT_RUN);
570 flush_writes(ohci);
571
572 ohci_err(ohci, "AR error: %s; DMA stopped\n", error_msg);
573 }
574 /* FIXME: restart? */
575 }
576
ar_next_buffer_index(unsigned int index)577 static inline unsigned int ar_next_buffer_index(unsigned int index)
578 {
579 return (index + 1) % AR_BUFFERS;
580 }
581
ar_first_buffer_index(struct ar_context * ctx)582 static inline unsigned int ar_first_buffer_index(struct ar_context *ctx)
583 {
584 return ar_next_buffer_index(ctx->last_buffer_index);
585 }
586
587 /*
588 * We search for the buffer that contains the last AR packet DMA data written
589 * by the controller.
590 */
ar_search_last_active_buffer(struct ar_context * ctx,unsigned int * buffer_offset)591 static unsigned int ar_search_last_active_buffer(struct ar_context *ctx,
592 unsigned int *buffer_offset)
593 {
594 unsigned int i, next_i, last = ctx->last_buffer_index;
595 __le16 res_count, next_res_count;
596
597 i = ar_first_buffer_index(ctx);
598 res_count = READ_ONCE(ctx->descriptors[i].res_count);
599
600 /* A buffer that is not yet completely filled must be the last one. */
601 while (i != last && res_count == 0) {
602
603 /* Peek at the next descriptor. */
604 next_i = ar_next_buffer_index(i);
605 rmb(); /* read descriptors in order */
606 next_res_count = READ_ONCE(ctx->descriptors[next_i].res_count);
607 /*
608 * If the next descriptor is still empty, we must stop at this
609 * descriptor.
610 */
611 if (next_res_count == cpu_to_le16(PAGE_SIZE)) {
612 /*
613 * The exception is when the DMA data for one packet is
614 * split over three buffers; in this case, the middle
615 * buffer's descriptor might be never updated by the
616 * controller and look still empty, and we have to peek
617 * at the third one.
618 */
619 if (MAX_AR_PACKET_SIZE > PAGE_SIZE && i != last) {
620 next_i = ar_next_buffer_index(next_i);
621 rmb();
622 next_res_count = READ_ONCE(ctx->descriptors[next_i].res_count);
623 if (next_res_count != cpu_to_le16(PAGE_SIZE))
624 goto next_buffer_is_active;
625 }
626
627 break;
628 }
629
630 next_buffer_is_active:
631 i = next_i;
632 res_count = next_res_count;
633 }
634
635 rmb(); /* read res_count before the DMA data */
636
637 *buffer_offset = PAGE_SIZE - le16_to_cpu(res_count);
638 if (*buffer_offset > PAGE_SIZE) {
639 *buffer_offset = 0;
640 ar_context_abort(ctx, "corrupted descriptor");
641 }
642
643 return i;
644 }
645
ar_sync_buffers_for_cpu(struct ar_context * ctx,unsigned int end_buffer_index,unsigned int end_buffer_offset)646 static void ar_sync_buffers_for_cpu(struct ar_context *ctx,
647 unsigned int end_buffer_index,
648 unsigned int end_buffer_offset)
649 {
650 unsigned int i;
651
652 i = ar_first_buffer_index(ctx);
653 while (i != end_buffer_index) {
654 dma_sync_single_for_cpu(ctx->ohci->card.device, ctx->dma_addrs[i], PAGE_SIZE,
655 DMA_FROM_DEVICE);
656 i = ar_next_buffer_index(i);
657 }
658 if (end_buffer_offset > 0)
659 dma_sync_single_for_cpu(ctx->ohci->card.device, ctx->dma_addrs[i],
660 end_buffer_offset, DMA_FROM_DEVICE);
661 }
662
663 #if defined(CONFIG_PPC_PMAC) && defined(CONFIG_PPC32)
cond_le32_to_cpu(__le32 value,bool has_be_header_quirk)664 static u32 cond_le32_to_cpu(__le32 value, bool has_be_header_quirk)
665 {
666 return has_be_header_quirk ? (__force __u32)value : le32_to_cpu(value);
667 }
668
has_be_header_quirk(const struct fw_ohci * ohci)669 static bool has_be_header_quirk(const struct fw_ohci *ohci)
670 {
671 return !!(ohci->quirks & QUIRK_BE_HEADERS);
672 }
673 #else
cond_le32_to_cpu(__le32 value,bool has_be_header_quirk __maybe_unused)674 static u32 cond_le32_to_cpu(__le32 value, bool has_be_header_quirk __maybe_unused)
675 {
676 return le32_to_cpu(value);
677 }
678
has_be_header_quirk(const struct fw_ohci * ohci)679 static bool has_be_header_quirk(const struct fw_ohci *ohci)
680 {
681 return false;
682 }
683 #endif
684
handle_ar_packet(struct ar_context * ctx,__le32 * buffer)685 static __le32 *handle_ar_packet(struct ar_context *ctx, __le32 *buffer)
686 {
687 struct fw_ohci *ohci = ctx->ohci;
688 struct fw_packet p;
689 u32 status, length, tcode;
690 int evt;
691
692 p.header[0] = cond_le32_to_cpu(buffer[0], has_be_header_quirk(ohci));
693 p.header[1] = cond_le32_to_cpu(buffer[1], has_be_header_quirk(ohci));
694 p.header[2] = cond_le32_to_cpu(buffer[2], has_be_header_quirk(ohci));
695
696 tcode = async_header_get_tcode(p.header);
697 switch (tcode) {
698 case TCODE_WRITE_QUADLET_REQUEST:
699 case TCODE_READ_QUADLET_RESPONSE:
700 p.header[3] = (__force __u32) buffer[3];
701 p.header_length = 16;
702 p.payload_length = 0;
703 break;
704
705 case TCODE_READ_BLOCK_REQUEST :
706 p.header[3] = cond_le32_to_cpu(buffer[3], has_be_header_quirk(ohci));
707 p.header_length = 16;
708 p.payload_length = 0;
709 break;
710
711 case TCODE_WRITE_BLOCK_REQUEST:
712 case TCODE_READ_BLOCK_RESPONSE:
713 case TCODE_LOCK_REQUEST:
714 case TCODE_LOCK_RESPONSE:
715 p.header[3] = cond_le32_to_cpu(buffer[3], has_be_header_quirk(ohci));
716 p.header_length = 16;
717 p.payload_length = async_header_get_data_length(p.header);
718 if (p.payload_length > MAX_ASYNC_PAYLOAD) {
719 ar_context_abort(ctx, "invalid packet length");
720 return NULL;
721 }
722 break;
723
724 case TCODE_WRITE_RESPONSE:
725 case TCODE_READ_QUADLET_REQUEST:
726 case TCODE_LINK_INTERNAL:
727 p.header_length = 12;
728 p.payload_length = 0;
729 break;
730
731 default:
732 ar_context_abort(ctx, "invalid tcode");
733 return NULL;
734 }
735
736 p.payload = (void *) buffer + p.header_length;
737
738 /* FIXME: What to do about evt_* errors? */
739 length = (p.header_length + p.payload_length + 3) / 4;
740 status = cond_le32_to_cpu(buffer[length], has_be_header_quirk(ohci));
741 evt = (status >> 16) & 0x1f;
742
743 p.ack = evt - 16;
744 p.speed = (status >> 21) & 0x7;
745 p.timestamp = status & 0xffff;
746 p.generation = ohci->request_generation;
747
748 /*
749 * Several controllers, notably from NEC and VIA, forget to
750 * write ack_complete status at PHY packet reception.
751 */
752 if (evt == OHCI1394_evt_no_status && tcode == TCODE_LINK_INTERNAL)
753 p.ack = ACK_COMPLETE;
754
755 /*
756 * The OHCI bus reset handler synthesizes a PHY packet with
757 * the new generation number when a bus reset happens (see
758 * section 8.4.2.3). This helps us determine when a request
759 * was received and make sure we send the response in the same
760 * generation. We only need this for requests; for responses
761 * we use the unique tlabel for finding the matching
762 * request.
763 *
764 * Alas some chips sometimes emit bus reset packets with a
765 * wrong generation. We set the correct generation for these
766 * at a slightly incorrect time (in handle_selfid_complete_event).
767 */
768 if (evt == OHCI1394_evt_bus_reset) {
769 if (!(ohci->quirks & QUIRK_RESET_PACKET))
770 ohci->request_generation = (p.header[2] >> 16) & 0xff;
771 } else if (ctx == &ohci->ar_request_ctx) {
772 fw_core_handle_request(&ohci->card, &p);
773 } else {
774 fw_core_handle_response(&ohci->card, &p);
775 }
776
777 return buffer + length + 1;
778 }
779
handle_ar_packets(struct ar_context * ctx,void * p,void * end)780 static void *handle_ar_packets(struct ar_context *ctx, void *p, void *end)
781 {
782 void *next;
783
784 while (p < end) {
785 next = handle_ar_packet(ctx, p);
786 if (!next)
787 return p;
788 p = next;
789 }
790
791 return p;
792 }
793
ar_recycle_buffers(struct ar_context * ctx,unsigned int end_buffer)794 static void ar_recycle_buffers(struct ar_context *ctx, unsigned int end_buffer)
795 {
796 unsigned int i;
797
798 i = ar_first_buffer_index(ctx);
799 while (i != end_buffer) {
800 dma_sync_single_for_device(ctx->ohci->card.device, ctx->dma_addrs[i], PAGE_SIZE,
801 DMA_FROM_DEVICE);
802 ar_context_link_page(ctx, i);
803 i = ar_next_buffer_index(i);
804 }
805 }
806
ohci_ar_context_work(struct work_struct * work)807 static void ohci_ar_context_work(struct work_struct *work)
808 {
809 struct ar_context *ctx = from_work(ctx, work, work);
810 unsigned int end_buffer_index, end_buffer_offset;
811 void *p, *end;
812
813 p = ctx->pointer;
814 if (!p)
815 return;
816
817 end_buffer_index = ar_search_last_active_buffer(ctx, &end_buffer_offset);
818 ar_sync_buffers_for_cpu(ctx, end_buffer_index, end_buffer_offset);
819 end = ctx->buffer + end_buffer_index * PAGE_SIZE + end_buffer_offset;
820
821 if (end_buffer_index < ar_first_buffer_index(ctx)) {
822 // The filled part of the overall buffer wraps around; handle all packets up to the
823 // buffer end here. If the last packet wraps around, its tail will be visible after
824 // the buffer end because the buffer start pages are mapped there again.
825 void *buffer_end = ctx->buffer + AR_BUFFERS * PAGE_SIZE;
826 p = handle_ar_packets(ctx, p, buffer_end);
827 if (p < buffer_end)
828 goto error;
829 // adjust p to point back into the actual buffer
830 p -= AR_BUFFERS * PAGE_SIZE;
831 }
832
833 p = handle_ar_packets(ctx, p, end);
834 if (p != end) {
835 if (p > end)
836 ar_context_abort(ctx, "inconsistent descriptor");
837 goto error;
838 }
839
840 ctx->pointer = p;
841 ar_recycle_buffers(ctx, end_buffer_index);
842
843 return;
844 error:
845 ctx->pointer = NULL;
846 }
847
ar_context_init(struct ar_context * ctx,struct fw_ohci * ohci,unsigned int descriptors_offset,u32 regs)848 static int ar_context_init(struct ar_context *ctx, struct fw_ohci *ohci,
849 unsigned int descriptors_offset, u32 regs)
850 {
851 struct device *dev = ohci->card.device;
852 unsigned int i;
853 struct page *pages[AR_BUFFERS + AR_WRAPAROUND_PAGES] = { NULL };
854 dma_addr_t dma_addrs[AR_BUFFERS];
855 void *vaddr;
856 struct descriptor *d;
857
858 ctx->regs = regs;
859 ctx->ohci = ohci;
860 INIT_WORK(&ctx->work, ohci_ar_context_work);
861
862 // Retrieve noncontiguous pages. The descriptors for 1394 OHCI AR DMA contexts have a set
863 // of address and length per each. The reason to use pages is to construct contiguous
864 // address range in kernel virtual address space.
865 unsigned long nr_populated = alloc_pages_bulk(GFP_KERNEL | GFP_DMA32, AR_BUFFERS, pages);
866
867 if (nr_populated != AR_BUFFERS) {
868 release_pages(pages, nr_populated);
869 return -ENOMEM;
870 }
871
872 // Map the pages into contiguous kernel virtual addresses so that the packet data
873 // across the pages can be referred as being contiguous, especially across the last
874 // and first pages.
875 for (i = 0; i < AR_WRAPAROUND_PAGES; i++)
876 pages[AR_BUFFERS + i] = pages[i];
877 vaddr = vmap(pages, ARRAY_SIZE(pages), VM_MAP, PAGE_KERNEL);
878 if (!vaddr) {
879 release_pages(pages, nr_populated);
880 return -ENOMEM;
881 }
882
883 // Retrieve DMA mapping addresses for the pages. They are not contiguous. Maintain the cache
884 // coherency for the pages by hand.
885 for (i = 0; i < AR_BUFFERS; i++) {
886 // The dma_map_phys() with a physical address per page is available here, instead.
887 dma_addr_t dma_addr = dma_map_page(dev, pages[i], 0, PAGE_SIZE, DMA_FROM_DEVICE);
888 if (dma_mapping_error(dev, dma_addr))
889 break;
890 dma_addrs[i] = dma_addr;
891 dma_sync_single_for_device(dev, dma_addr, PAGE_SIZE, DMA_FROM_DEVICE);
892 }
893 if (i < AR_BUFFERS) {
894 while (i-- > 0)
895 dma_unmap_page(dev, dma_addrs[i], PAGE_SIZE, DMA_FROM_DEVICE);
896 vunmap(vaddr);
897 release_pages(pages, nr_populated);
898 return -ENOMEM;
899 }
900
901 memcpy(ctx->dma_addrs, dma_addrs, sizeof(ctx->dma_addrs));
902 ctx->buffer = vaddr;
903 memcpy(ctx->pages, pages, sizeof(ctx->pages));
904
905 ctx->descriptors = ohci->misc_buffer + descriptors_offset;
906 ctx->descriptors_bus = ohci->misc_buffer_bus + descriptors_offset;
907
908 for (i = 0; i < AR_BUFFERS; i++) {
909 d = &ctx->descriptors[i];
910 d->req_count = cpu_to_le16(PAGE_SIZE);
911 d->control = cpu_to_le16(DESCRIPTOR_INPUT_MORE |
912 DESCRIPTOR_STATUS |
913 DESCRIPTOR_BRANCH_ALWAYS);
914 d->data_address = cpu_to_le32(ctx->dma_addrs[i]);
915 d->branch_address = cpu_to_le32(ctx->descriptors_bus +
916 ar_next_buffer_index(i) * sizeof(struct descriptor));
917 }
918
919 return 0;
920 }
921
ar_context_run(struct ar_context * ctx)922 static void ar_context_run(struct ar_context *ctx)
923 {
924 unsigned int i;
925
926 for (i = 0; i < AR_BUFFERS; i++)
927 ar_context_link_page(ctx, i);
928
929 ctx->pointer = ctx->buffer;
930
931 reg_write(ctx->ohci, COMMAND_PTR(ctx->regs), ctx->descriptors_bus | 1);
932 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_RUN);
933 }
934
find_branch_descriptor(struct descriptor * d,int z)935 static struct descriptor *find_branch_descriptor(struct descriptor *d, int z)
936 {
937 __le16 branch;
938
939 branch = d->control & cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS);
940
941 /* figure out which descriptor the branch address goes in */
942 if (z == 2 && branch == cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS))
943 return d;
944 else
945 return d + z - 1;
946 }
947
context_retire_descriptors(struct context * ctx)948 static void context_retire_descriptors(struct context *ctx)
949 {
950 struct descriptor *d, *last;
951 u32 address;
952 int z;
953 struct descriptor_buffer *desc;
954
955 desc = list_entry(ctx->buffer_list.next,
956 struct descriptor_buffer, list);
957 last = ctx->last;
958 while (last->branch_address != 0) {
959 struct descriptor_buffer *old_desc = desc;
960 address = le32_to_cpu(last->branch_address);
961 z = address & 0xf;
962 address &= ~0xf;
963 ctx->current_bus = address;
964
965 /* If the branch address points to a buffer outside of the
966 * current buffer, advance to the next buffer. */
967 if (address < desc->buffer_bus ||
968 address >= desc->buffer_bus + desc->used)
969 desc = list_entry(desc->list.next,
970 struct descriptor_buffer, list);
971 d = desc->buffer + (address - desc->buffer_bus) / sizeof(*d);
972 last = find_branch_descriptor(d, z);
973
974 if (!ctx->callback(ctx, d, last))
975 break;
976
977 if (old_desc != desc) {
978 // If we've advanced to the next buffer, move the previous buffer to the
979 // free list.
980 old_desc->used = 0;
981 guard(spinlock_irqsave)(&ctx->ohci->lock);
982 list_move_tail(&old_desc->list, &ctx->buffer_list);
983 }
984 ctx->last = last;
985 }
986 }
987
ohci_at_context_work(struct work_struct * work)988 static void ohci_at_context_work(struct work_struct *work)
989 {
990 struct at_context *ctx = from_work(ctx, work, work);
991
992 context_retire_descriptors(&ctx->context);
993 }
994
ohci_isoc_context_work(struct work_struct * work)995 static void ohci_isoc_context_work(struct work_struct *work)
996 {
997 struct fw_iso_context *base = from_work(base, work, work);
998 struct iso_context *isoc_ctx = container_of(base, struct iso_context, base);
999
1000 context_retire_descriptors(&isoc_ctx->context);
1001 }
1002
1003 /*
1004 * Allocate a new buffer and add it to the list of free buffers for this
1005 * context. Must be called with ohci->lock held.
1006 */
context_add_buffer(struct context * ctx)1007 static int context_add_buffer(struct context *ctx)
1008 {
1009 struct descriptor_buffer *desc;
1010 dma_addr_t bus_addr;
1011 int offset;
1012
1013 /*
1014 * 16MB of descriptors should be far more than enough for any DMA
1015 * program. This will catch run-away userspace or DoS attacks.
1016 */
1017 if (ctx->total_allocation >= 16*1024*1024)
1018 return -ENOMEM;
1019
1020 desc = dmam_alloc_coherent(ctx->ohci->card.device, PAGE_SIZE, &bus_addr, GFP_ATOMIC);
1021 if (!desc)
1022 return -ENOMEM;
1023
1024 offset = (void *)&desc->buffer - (void *)desc;
1025 /*
1026 * Some controllers, like JMicron ones, always issue 0x20-byte DMA reads
1027 * for descriptors, even 0x10-byte ones. This can cause page faults when
1028 * an IOMMU is in use and the oversized read crosses a page boundary.
1029 * Work around this by always leaving at least 0x10 bytes of padding.
1030 */
1031 desc->buffer_size = PAGE_SIZE - offset - 0x10;
1032 desc->buffer_bus = bus_addr + offset;
1033 desc->used = 0;
1034
1035 list_add_tail(&desc->list, &ctx->buffer_list);
1036 ctx->total_allocation += PAGE_SIZE;
1037
1038 return 0;
1039 }
1040
context_init(struct context * ctx,struct fw_ohci * ohci,u32 regs,descriptor_callback_t callback)1041 static int context_init(struct context *ctx, struct fw_ohci *ohci,
1042 u32 regs, descriptor_callback_t callback)
1043 {
1044 ctx->ohci = ohci;
1045 ctx->regs = regs;
1046 ctx->total_allocation = 0;
1047
1048 INIT_LIST_HEAD(&ctx->buffer_list);
1049 if (context_add_buffer(ctx) < 0)
1050 return -ENOMEM;
1051
1052 ctx->buffer_tail = list_entry(ctx->buffer_list.next,
1053 struct descriptor_buffer, list);
1054
1055 ctx->callback = callback;
1056
1057 /*
1058 * We put a dummy descriptor in the buffer that has a NULL
1059 * branch address and looks like it's been sent. That way we
1060 * have a descriptor to append DMA programs to.
1061 */
1062 memset(ctx->buffer_tail->buffer, 0, sizeof(*ctx->buffer_tail->buffer));
1063 ctx->buffer_tail->buffer->control = cpu_to_le16(DESCRIPTOR_OUTPUT_LAST);
1064 ctx->buffer_tail->buffer->transfer_status = cpu_to_le16(0x8011);
1065 ctx->buffer_tail->used += sizeof(*ctx->buffer_tail->buffer);
1066 ctx->last = ctx->buffer_tail->buffer;
1067 ctx->prev = ctx->buffer_tail->buffer;
1068 ctx->prev_z = 1;
1069
1070 return 0;
1071 }
1072
context_release(struct context * ctx)1073 static void context_release(struct context *ctx)
1074 {
1075 struct fw_card *card = &ctx->ohci->card;
1076 struct descriptor_buffer *desc, *tmp;
1077
1078 list_for_each_entry_safe(desc, tmp, &ctx->buffer_list, list) {
1079 dmam_free_coherent(card->device, PAGE_SIZE, desc,
1080 desc->buffer_bus - ((void *)&desc->buffer - (void *)desc));
1081 }
1082 }
1083
1084 /* Must be called with ohci->lock held */
context_get_descriptors(struct context * ctx,int z,dma_addr_t * d_bus)1085 static struct descriptor *context_get_descriptors(struct context *ctx,
1086 int z, dma_addr_t *d_bus)
1087 {
1088 struct descriptor *d = NULL;
1089 struct descriptor_buffer *desc = ctx->buffer_tail;
1090
1091 if (z * sizeof(*d) > desc->buffer_size)
1092 return NULL;
1093
1094 if (z * sizeof(*d) > desc->buffer_size - desc->used) {
1095 /* No room for the descriptor in this buffer, so advance to the
1096 * next one. */
1097
1098 if (desc->list.next == &ctx->buffer_list) {
1099 /* If there is no free buffer next in the list,
1100 * allocate one. */
1101 if (context_add_buffer(ctx) < 0)
1102 return NULL;
1103 }
1104 desc = list_entry(desc->list.next,
1105 struct descriptor_buffer, list);
1106 ctx->buffer_tail = desc;
1107 }
1108
1109 d = desc->buffer + desc->used / sizeof(*d);
1110 memset(d, 0, z * sizeof(*d));
1111 *d_bus = desc->buffer_bus + desc->used;
1112
1113 return d;
1114 }
1115
context_run(struct context * ctx,u32 extra)1116 static void context_run(struct context *ctx, u32 extra)
1117 {
1118 struct fw_ohci *ohci = ctx->ohci;
1119
1120 reg_write(ohci, COMMAND_PTR(ctx->regs),
1121 le32_to_cpu(ctx->last->branch_address));
1122 reg_write(ohci, CONTROL_CLEAR(ctx->regs), ~0);
1123 reg_write(ohci, CONTROL_SET(ctx->regs), CONTEXT_RUN | extra);
1124 ctx->running = true;
1125 flush_writes(ohci);
1126 }
1127
context_append(struct context * ctx,struct descriptor * d,int z,int extra)1128 static void context_append(struct context *ctx,
1129 struct descriptor *d, int z, int extra)
1130 {
1131 dma_addr_t d_bus;
1132 struct descriptor_buffer *desc = ctx->buffer_tail;
1133 struct descriptor *d_branch;
1134
1135 d_bus = desc->buffer_bus + (d - desc->buffer) * sizeof(*d);
1136
1137 desc->used += (z + extra) * sizeof(*d);
1138
1139 wmb(); /* finish init of new descriptors before branch_address update */
1140
1141 d_branch = find_branch_descriptor(ctx->prev, ctx->prev_z);
1142 d_branch->branch_address = cpu_to_le32(d_bus | z);
1143
1144 /*
1145 * VT6306 incorrectly checks only the single descriptor at the
1146 * CommandPtr when the wake bit is written, so if it's a
1147 * multi-descriptor block starting with an INPUT_MORE, put a copy of
1148 * the branch address in the first descriptor.
1149 *
1150 * Not doing this for transmit contexts since not sure how it interacts
1151 * with skip addresses.
1152 */
1153 if (unlikely(ctx->ohci->quirks & QUIRK_IR_WAKE) &&
1154 d_branch != ctx->prev &&
1155 (ctx->prev->control & cpu_to_le16(DESCRIPTOR_CMD)) ==
1156 cpu_to_le16(DESCRIPTOR_INPUT_MORE)) {
1157 ctx->prev->branch_address = cpu_to_le32(d_bus | z);
1158 }
1159
1160 ctx->prev = d;
1161 ctx->prev_z = z;
1162 }
1163
context_stop(struct context * ctx)1164 static void context_stop(struct context *ctx)
1165 {
1166 struct fw_ohci *ohci = ctx->ohci;
1167 u32 reg;
1168 int i;
1169
1170 reg_write(ohci, CONTROL_CLEAR(ctx->regs), CONTEXT_RUN);
1171 ctx->running = false;
1172
1173 for (i = 0; i < 1000; i++) {
1174 reg = reg_read(ohci, CONTROL_SET(ctx->regs));
1175 if ((reg & CONTEXT_ACTIVE) == 0)
1176 return;
1177
1178 if (i)
1179 udelay(10);
1180 }
1181 ohci_err(ohci, "DMA context still active (0x%08x)\n", reg);
1182 }
1183
1184 struct driver_data {
1185 u8 inline_data[8];
1186 struct fw_packet *packet;
1187 };
1188
1189 /*
1190 * This function appends a packet to the DMA queue for transmission.
1191 * Must always be called with the ochi->lock held to ensure proper
1192 * generation handling and locking around packet queue manipulation.
1193 */
at_context_queue_packet(struct at_context * ctx,struct fw_packet * packet)1194 static int at_context_queue_packet(struct at_context *ctx, struct fw_packet *packet)
1195 {
1196 struct context *context = &ctx->context;
1197 struct fw_ohci *ohci = context->ohci;
1198 dma_addr_t d_bus, payload_bus;
1199 struct driver_data *driver_data;
1200 struct descriptor *d, *last;
1201 __le32 *header;
1202 int z, tcode;
1203
1204 d = context_get_descriptors(context, 4, &d_bus);
1205 if (d == NULL) {
1206 packet->ack = RCODE_SEND_ERROR;
1207 return -1;
1208 }
1209
1210 d[0].control = cpu_to_le16(DESCRIPTOR_KEY_IMMEDIATE);
1211 d[0].res_count = cpu_to_le16(packet->timestamp);
1212
1213 tcode = async_header_get_tcode(packet->header);
1214 header = (__le32 *) &d[1];
1215 switch (tcode) {
1216 case TCODE_WRITE_QUADLET_REQUEST:
1217 case TCODE_WRITE_BLOCK_REQUEST:
1218 case TCODE_WRITE_RESPONSE:
1219 case TCODE_READ_QUADLET_REQUEST:
1220 case TCODE_READ_BLOCK_REQUEST:
1221 case TCODE_READ_QUADLET_RESPONSE:
1222 case TCODE_READ_BLOCK_RESPONSE:
1223 case TCODE_LOCK_REQUEST:
1224 case TCODE_LOCK_RESPONSE:
1225 ohci1394_at_data_set_src_bus_id(header, false);
1226 ohci1394_at_data_set_speed(header, packet->speed);
1227 ohci1394_at_data_set_tlabel(header, async_header_get_tlabel(packet->header));
1228 ohci1394_at_data_set_retry(header, async_header_get_retry(packet->header));
1229 ohci1394_at_data_set_tcode(header, tcode);
1230
1231 ohci1394_at_data_set_destination_id(header,
1232 async_header_get_destination(packet->header));
1233
1234 if (ctx == &ohci->at_response_ctx) {
1235 ohci1394_at_data_set_rcode(header, async_header_get_rcode(packet->header));
1236 } else {
1237 ohci1394_at_data_set_destination_offset(header,
1238 async_header_get_offset(packet->header));
1239 }
1240
1241 if (tcode_is_block_packet(tcode))
1242 header[3] = cpu_to_le32(packet->header[3]);
1243 else
1244 header[3] = (__force __le32) packet->header[3];
1245
1246 d[0].req_count = cpu_to_le16(packet->header_length);
1247 break;
1248 case TCODE_LINK_INTERNAL:
1249 ohci1394_at_data_set_speed(header, packet->speed);
1250 ohci1394_at_data_set_tcode(header, TCODE_LINK_INTERNAL);
1251
1252 header[1] = cpu_to_le32(packet->header[1]);
1253 header[2] = cpu_to_le32(packet->header[2]);
1254 d[0].req_count = cpu_to_le16(12);
1255
1256 if (is_ping_packet(&packet->header[1]))
1257 d[0].control |= cpu_to_le16(DESCRIPTOR_PING);
1258 break;
1259
1260 case TCODE_STREAM_DATA:
1261 ohci1394_it_data_set_speed(header, packet->speed);
1262 ohci1394_it_data_set_tag(header, isoc_header_get_tag(packet->header[0]));
1263 ohci1394_it_data_set_channel(header, isoc_header_get_channel(packet->header[0]));
1264 ohci1394_it_data_set_tcode(header, TCODE_STREAM_DATA);
1265 ohci1394_it_data_set_sync(header, isoc_header_get_sy(packet->header[0]));
1266
1267 ohci1394_it_data_set_data_length(header, isoc_header_get_data_length(packet->header[0]));
1268
1269 d[0].req_count = cpu_to_le16(8);
1270 break;
1271
1272 default:
1273 /* BUG(); */
1274 packet->ack = RCODE_SEND_ERROR;
1275 return -1;
1276 }
1277
1278 BUILD_BUG_ON(sizeof(struct driver_data) > sizeof(struct descriptor));
1279 driver_data = (struct driver_data *) &d[3];
1280 driver_data->packet = packet;
1281 packet->driver_data = driver_data;
1282
1283 if (packet->payload_length > 0) {
1284 if (packet->payload_length > sizeof(driver_data->inline_data)) {
1285 payload_bus = dma_map_single(ohci->card.device,
1286 packet->payload,
1287 packet->payload_length,
1288 DMA_TO_DEVICE);
1289 if (dma_mapping_error(ohci->card.device, payload_bus)) {
1290 packet->ack = RCODE_SEND_ERROR;
1291 return -1;
1292 }
1293 packet->payload_bus = payload_bus;
1294 packet->payload_mapped = true;
1295 } else {
1296 memcpy(driver_data->inline_data, packet->payload,
1297 packet->payload_length);
1298 payload_bus = d_bus + 3 * sizeof(*d);
1299 }
1300
1301 d[2].req_count = cpu_to_le16(packet->payload_length);
1302 d[2].data_address = cpu_to_le32(payload_bus);
1303 last = &d[2];
1304 z = 3;
1305 } else {
1306 last = &d[0];
1307 z = 2;
1308 }
1309
1310 last->control |= cpu_to_le16(DESCRIPTOR_OUTPUT_LAST |
1311 DESCRIPTOR_IRQ_ALWAYS |
1312 DESCRIPTOR_BRANCH_ALWAYS);
1313
1314 /* FIXME: Document how the locking works. */
1315 if (ohci->generation != packet->generation) {
1316 if (packet->payload_mapped)
1317 dma_unmap_single(ohci->card.device, payload_bus,
1318 packet->payload_length, DMA_TO_DEVICE);
1319 packet->ack = RCODE_GENERATION;
1320 return -1;
1321 }
1322
1323 context_append(context, d, z, 4 - z);
1324
1325 if (context->running)
1326 reg_write(ohci, CONTROL_SET(context->regs), CONTEXT_WAKE);
1327 else
1328 context_run(context, 0);
1329
1330 return 0;
1331 }
1332
at_context_flush(struct at_context * ctx)1333 static void at_context_flush(struct at_context *ctx)
1334 {
1335 // Avoid dead lock due to programming mistake.
1336 if (WARN_ON_ONCE(current_work() == &ctx->work))
1337 return;
1338
1339 disable_work_sync(&ctx->work);
1340
1341 WRITE_ONCE(ctx->flushing, true);
1342 ohci_at_context_work(&ctx->work);
1343 WRITE_ONCE(ctx->flushing, false);
1344
1345 enable_work(&ctx->work);
1346 }
1347
find_fw_device(struct device * dev,const void * data)1348 static int find_fw_device(struct device *dev, const void *data)
1349 {
1350 struct fw_device *device = fw_device(dev);
1351 const u32 *params = data;
1352
1353 return (device->generation == params[0]) && (device->node_id == params[1]);
1354 }
1355
handle_at_packet(struct context * context,struct descriptor * d,struct descriptor * last)1356 static int handle_at_packet(struct context *context,
1357 struct descriptor *d,
1358 struct descriptor *last)
1359 {
1360 struct at_context *ctx = container_of(context, struct at_context, context);
1361 struct fw_ohci *ohci = ctx->context.ohci;
1362 struct driver_data *driver_data;
1363 struct fw_packet *packet;
1364 int evt;
1365
1366 if (last->transfer_status == 0 && !READ_ONCE(ctx->flushing))
1367 /* This descriptor isn't done yet, stop iteration. */
1368 return 0;
1369
1370 driver_data = (struct driver_data *) &d[3];
1371 packet = driver_data->packet;
1372 if (packet == NULL)
1373 /* This packet was cancelled, just continue. */
1374 return 1;
1375
1376 if (packet->payload_mapped)
1377 dma_unmap_single(ohci->card.device, packet->payload_bus,
1378 packet->payload_length, DMA_TO_DEVICE);
1379
1380 evt = le16_to_cpu(last->transfer_status) & 0x1f;
1381 packet->timestamp = le16_to_cpu(last->res_count);
1382
1383 switch (evt) {
1384 case OHCI1394_evt_timeout:
1385 /* Async response transmit timed out. */
1386 packet->ack = RCODE_CANCELLED;
1387 break;
1388
1389 case OHCI1394_evt_flushed:
1390 /*
1391 * The packet was flushed should give same error as
1392 * when we try to use a stale generation count.
1393 */
1394 packet->ack = RCODE_GENERATION;
1395 break;
1396
1397 case OHCI1394_evt_missing_ack:
1398 if (READ_ONCE(ctx->flushing))
1399 packet->ack = RCODE_GENERATION;
1400 else {
1401 /*
1402 * Using a valid (current) generation count, but the
1403 * node is not on the bus or not sending acks.
1404 */
1405 packet->ack = RCODE_NO_ACK;
1406 }
1407 break;
1408
1409 case ACK_COMPLETE + 0x10:
1410 case ACK_PENDING + 0x10:
1411 case ACK_BUSY_X + 0x10:
1412 case ACK_BUSY_A + 0x10:
1413 case ACK_BUSY_B + 0x10:
1414 case ACK_DATA_ERROR + 0x10:
1415 case ACK_TYPE_ERROR + 0x10:
1416 packet->ack = evt - 0x10;
1417 break;
1418
1419 case OHCI1394_evt_no_status:
1420 if (READ_ONCE(ctx->flushing)) {
1421 packet->ack = RCODE_GENERATION;
1422 break;
1423 }
1424 fallthrough;
1425
1426 default:
1427 if (unlikely(evt == 0x10)) {
1428 u32 params[2] = {
1429 packet->generation,
1430 async_header_get_destination(packet->header),
1431 };
1432 struct device *dev;
1433
1434 fw_card_get(&ohci->card);
1435 dev = device_find_child(ohci->card.device, (const void *)params, find_fw_device);
1436 fw_card_put(&ohci->card);
1437 if (dev) {
1438 struct fw_device *device = fw_device(dev);
1439 int quirks = READ_ONCE(device->quirks);
1440
1441 put_device(dev);
1442 if (quirks & FW_DEVICE_QUIRK_ACK_PACKET_WITH_INVALID_PENDING_CODE) {
1443 packet->ack = ACK_PENDING;
1444 break;
1445 }
1446 }
1447 }
1448 packet->ack = RCODE_SEND_ERROR;
1449 break;
1450 }
1451
1452 packet->callback(packet, &ohci->card, packet->ack);
1453
1454 return 1;
1455 }
1456
1457 static u32 get_cycle_time(struct fw_ohci *ohci);
1458
handle_local_rom(struct fw_ohci * ohci,struct fw_packet * packet,u32 csr)1459 static void handle_local_rom(struct fw_ohci *ohci,
1460 struct fw_packet *packet, u32 csr)
1461 {
1462 struct fw_packet response;
1463 int tcode, length, i;
1464
1465 tcode = async_header_get_tcode(packet->header);
1466 if (tcode_is_block_packet(tcode))
1467 length = async_header_get_data_length(packet->header);
1468 else
1469 length = 4;
1470
1471 i = csr - CSR_CONFIG_ROM;
1472 if (i + length > CONFIG_ROM_SIZE) {
1473 fw_fill_response(&response, packet->header,
1474 RCODE_ADDRESS_ERROR, NULL, 0);
1475 } else if (!tcode_is_read_request(tcode)) {
1476 fw_fill_response(&response, packet->header,
1477 RCODE_TYPE_ERROR, NULL, 0);
1478 } else {
1479 fw_fill_response(&response, packet->header, RCODE_COMPLETE,
1480 (void *) ohci->config_rom + i, length);
1481 }
1482
1483 // Timestamping on behalf of the hardware.
1484 response.timestamp = cycle_time_to_ohci_tstamp(get_cycle_time(ohci));
1485 fw_core_handle_response(&ohci->card, &response);
1486 }
1487
handle_local_lock(struct fw_ohci * ohci,struct fw_packet * packet,u32 csr)1488 static void handle_local_lock(struct fw_ohci *ohci,
1489 struct fw_packet *packet, u32 csr)
1490 {
1491 struct fw_packet response;
1492 int tcode, length, ext_tcode, sel, try;
1493 __be32 *payload, lock_old;
1494 u32 lock_arg, lock_data;
1495
1496 tcode = async_header_get_tcode(packet->header);
1497 length = async_header_get_data_length(packet->header);
1498 payload = packet->payload;
1499 ext_tcode = async_header_get_extended_tcode(packet->header);
1500
1501 if (tcode == TCODE_LOCK_REQUEST &&
1502 ext_tcode == EXTCODE_COMPARE_SWAP && length == 8) {
1503 lock_arg = be32_to_cpu(payload[0]);
1504 lock_data = be32_to_cpu(payload[1]);
1505 } else if (tcode == TCODE_READ_QUADLET_REQUEST) {
1506 lock_arg = 0;
1507 lock_data = 0;
1508 } else {
1509 fw_fill_response(&response, packet->header,
1510 RCODE_TYPE_ERROR, NULL, 0);
1511 goto out;
1512 }
1513
1514 sel = (csr - CSR_BUS_MANAGER_ID) / 4;
1515 reg_write(ohci, OHCI1394_CSRData, lock_data);
1516 reg_write(ohci, OHCI1394_CSRCompareData, lock_arg);
1517 reg_write(ohci, OHCI1394_CSRControl, sel);
1518
1519 for (try = 0; try < 20; try++)
1520 if (reg_read(ohci, OHCI1394_CSRControl) & 0x80000000) {
1521 lock_old = cpu_to_be32(reg_read(ohci,
1522 OHCI1394_CSRData));
1523 fw_fill_response(&response, packet->header,
1524 RCODE_COMPLETE,
1525 &lock_old, sizeof(lock_old));
1526 goto out;
1527 }
1528
1529 ohci_err(ohci, "swap not done (CSR lock timeout)\n");
1530 fw_fill_response(&response, packet->header, RCODE_BUSY, NULL, 0);
1531
1532 out:
1533 // Timestamping on behalf of the hardware.
1534 response.timestamp = cycle_time_to_ohci_tstamp(get_cycle_time(ohci));
1535 fw_core_handle_response(&ohci->card, &response);
1536 }
1537
handle_local_request(struct at_context * ctx,struct fw_packet * packet)1538 static void handle_local_request(struct at_context *ctx, struct fw_packet *packet)
1539 {
1540 struct fw_ohci *ohci = ctx->context.ohci;
1541 u64 offset, csr;
1542
1543 if (ctx == &ohci->at_request_ctx) {
1544 packet->ack = ACK_PENDING;
1545 packet->callback(packet, &ohci->card, packet->ack);
1546 }
1547
1548 offset = async_header_get_offset(packet->header);
1549 csr = offset - CSR_REGISTER_BASE;
1550
1551 /* Handle config rom reads. */
1552 if (csr >= CSR_CONFIG_ROM && csr < CSR_CONFIG_ROM_END)
1553 handle_local_rom(ohci, packet, csr);
1554 else switch (csr) {
1555 case CSR_BUS_MANAGER_ID:
1556 case CSR_BANDWIDTH_AVAILABLE:
1557 case CSR_CHANNELS_AVAILABLE_HI:
1558 case CSR_CHANNELS_AVAILABLE_LO:
1559 handle_local_lock(ohci, packet, csr);
1560 break;
1561 default:
1562 if (ctx == &ohci->at_request_ctx)
1563 fw_core_handle_request(&ohci->card, packet);
1564 else
1565 fw_core_handle_response(&ohci->card, packet);
1566 break;
1567 }
1568
1569 if (ctx == &ohci->at_response_ctx) {
1570 packet->ack = ACK_COMPLETE;
1571 packet->callback(packet, &ohci->card, packet->ack);
1572 }
1573 }
1574
at_context_transmit(struct at_context * ctx,struct fw_packet * packet)1575 static void at_context_transmit(struct at_context *ctx, struct fw_packet *packet)
1576 {
1577 struct fw_ohci *ohci = ctx->context.ohci;
1578 unsigned long flags;
1579 int ret;
1580
1581 spin_lock_irqsave(&ohci->lock, flags);
1582
1583 if (async_header_get_destination(packet->header) == ohci->node_id &&
1584 ohci->generation == packet->generation) {
1585 spin_unlock_irqrestore(&ohci->lock, flags);
1586
1587 // Timestamping on behalf of the hardware.
1588 packet->timestamp = cycle_time_to_ohci_tstamp(get_cycle_time(ohci));
1589
1590 handle_local_request(ctx, packet);
1591 return;
1592 }
1593
1594 ret = at_context_queue_packet(ctx, packet);
1595 spin_unlock_irqrestore(&ohci->lock, flags);
1596
1597 if (ret < 0) {
1598 // Timestamping on behalf of the hardware.
1599 packet->timestamp = cycle_time_to_ohci_tstamp(get_cycle_time(ohci));
1600
1601 packet->callback(packet, &ohci->card, packet->ack);
1602 }
1603 }
1604
detect_dead_context(struct fw_ohci * ohci,const char * name,unsigned int regs)1605 static void detect_dead_context(struct fw_ohci *ohci,
1606 const char *name, unsigned int regs)
1607 {
1608 static const char *const evts[] = {
1609 [0x00] = "evt_no_status", [0x01] = "-reserved-",
1610 [0x02] = "evt_long_packet", [0x03] = "evt_missing_ack",
1611 [0x04] = "evt_underrun", [0x05] = "evt_overrun",
1612 [0x06] = "evt_descriptor_read", [0x07] = "evt_data_read",
1613 [0x08] = "evt_data_write", [0x09] = "evt_bus_reset",
1614 [0x0a] = "evt_timeout", [0x0b] = "evt_tcode_err",
1615 [0x0c] = "-reserved-", [0x0d] = "-reserved-",
1616 [0x0e] = "evt_unknown", [0x0f] = "evt_flushed",
1617 [0x10] = "-reserved-", [0x11] = "ack_complete",
1618 [0x12] = "ack_pending ", [0x13] = "-reserved-",
1619 [0x14] = "ack_busy_X", [0x15] = "ack_busy_A",
1620 [0x16] = "ack_busy_B", [0x17] = "-reserved-",
1621 [0x18] = "-reserved-", [0x19] = "-reserved-",
1622 [0x1a] = "-reserved-", [0x1b] = "ack_tardy",
1623 [0x1c] = "-reserved-", [0x1d] = "ack_data_error",
1624 [0x1e] = "ack_type_error", [0x1f] = "-reserved-",
1625 [0x20] = "pending/cancelled",
1626 };
1627 u32 ctl;
1628
1629 ctl = reg_read(ohci, CONTROL_SET(regs));
1630 if (ctl & CONTEXT_DEAD)
1631 ohci_err(ohci, "DMA context %s has stopped, error code: %s\n",
1632 name, evts[ctl & 0x1f]);
1633 }
1634
handle_dead_contexts(struct fw_ohci * ohci)1635 static void handle_dead_contexts(struct fw_ohci *ohci)
1636 {
1637 unsigned int i;
1638 char name[8];
1639
1640 detect_dead_context(ohci, "ATReq", OHCI1394_AsReqTrContextBase);
1641 detect_dead_context(ohci, "ATRsp", OHCI1394_AsRspTrContextBase);
1642 detect_dead_context(ohci, "ARReq", OHCI1394_AsReqRcvContextBase);
1643 detect_dead_context(ohci, "ARRsp", OHCI1394_AsRspRcvContextBase);
1644 for (i = 0; i < 32; ++i) {
1645 if (!(ohci->it_context_support & (1 << i)))
1646 continue;
1647 sprintf(name, "IT%u", i);
1648 detect_dead_context(ohci, name, OHCI1394_IsoXmitContextBase(i));
1649 }
1650 for (i = 0; i < 32; ++i) {
1651 if (!(ohci->ir_context_support & (1 << i)))
1652 continue;
1653 sprintf(name, "IR%u", i);
1654 detect_dead_context(ohci, name, OHCI1394_IsoRcvContextBase(i));
1655 }
1656 /* TODO: maybe try to flush and restart the dead contexts */
1657 }
1658
cycle_timer_ticks(u32 cycle_timer)1659 static u32 cycle_timer_ticks(u32 cycle_timer)
1660 {
1661 u32 ticks;
1662
1663 ticks = cycle_timer & 0xfff;
1664 ticks += 3072 * ((cycle_timer >> 12) & 0x1fff);
1665 ticks += (3072 * 8000) * (cycle_timer >> 25);
1666
1667 return ticks;
1668 }
1669
1670 /*
1671 * Some controllers exhibit one or more of the following bugs when updating the
1672 * iso cycle timer register:
1673 * - When the lowest six bits are wrapping around to zero, a read that happens
1674 * at the same time will return garbage in the lowest ten bits.
1675 * - When the cycleOffset field wraps around to zero, the cycleCount field is
1676 * not incremented for about 60 ns.
1677 * - Occasionally, the entire register reads zero.
1678 *
1679 * To catch these, we read the register three times and ensure that the
1680 * difference between each two consecutive reads is approximately the same, i.e.
1681 * less than twice the other. Furthermore, any negative difference indicates an
1682 * error. (A PCI read should take at least 20 ticks of the 24.576 MHz timer to
1683 * execute, so we have enough precision to compute the ratio of the differences.)
1684 */
get_cycle_time(struct fw_ohci * ohci)1685 static u32 get_cycle_time(struct fw_ohci *ohci)
1686 {
1687 u32 c0, c1, c2;
1688 u32 t0, t1, t2;
1689 s32 diff01, diff12;
1690 int i;
1691
1692 if (has_reboot_by_cycle_timer_read_quirk(ohci))
1693 return 0;
1694
1695 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
1696
1697 if (ohci->quirks & QUIRK_CYCLE_TIMER) {
1698 i = 0;
1699 c1 = c2;
1700 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
1701 do {
1702 c0 = c1;
1703 c1 = c2;
1704 c2 = reg_read(ohci, OHCI1394_IsochronousCycleTimer);
1705 t0 = cycle_timer_ticks(c0);
1706 t1 = cycle_timer_ticks(c1);
1707 t2 = cycle_timer_ticks(c2);
1708 diff01 = t1 - t0;
1709 diff12 = t2 - t1;
1710 } while ((diff01 <= 0 || diff12 <= 0 ||
1711 diff01 / diff12 >= 2 || diff12 / diff01 >= 2)
1712 && i++ < 20);
1713 }
1714
1715 return c2;
1716 }
1717
1718 /*
1719 * This function has to be called at least every 64 seconds. The bus_time
1720 * field stores not only the upper 25 bits of the BUS_TIME register but also
1721 * the most significant bit of the cycle timer in bit 6 so that we can detect
1722 * changes in this bit.
1723 */
update_bus_time(struct fw_ohci * ohci)1724 static u32 update_bus_time(struct fw_ohci *ohci)
1725 {
1726 u32 cycle_time_seconds = get_cycle_time(ohci) >> 25;
1727
1728 if (unlikely(!ohci->bus_time_running)) {
1729 reg_write(ohci, OHCI1394_IntMaskSet, OHCI1394_cycle64Seconds);
1730 ohci->bus_time = (lower_32_bits(ktime_get_seconds()) & ~0x7f) |
1731 (cycle_time_seconds & 0x40);
1732 ohci->bus_time_running = true;
1733 }
1734
1735 if ((ohci->bus_time & 0x40) != (cycle_time_seconds & 0x40))
1736 ohci->bus_time += 0x40;
1737
1738 return ohci->bus_time | cycle_time_seconds;
1739 }
1740
get_status_for_port(struct fw_ohci * ohci,int port_index,enum phy_packet_self_id_port_status * status)1741 static int get_status_for_port(struct fw_ohci *ohci, int port_index,
1742 enum phy_packet_self_id_port_status *status)
1743 {
1744 int reg;
1745
1746 scoped_guard(mutex, &ohci->phy_reg_mutex) {
1747 reg = write_phy_reg(ohci, 7, port_index);
1748 if (reg < 0)
1749 return reg;
1750
1751 reg = read_phy_reg(ohci, 8);
1752 if (reg < 0)
1753 return reg;
1754 }
1755
1756 switch (reg & 0x0f) {
1757 case 0x06:
1758 // is child node (connected to parent node)
1759 *status = PHY_PACKET_SELF_ID_PORT_STATUS_PARENT;
1760 break;
1761 case 0x0e:
1762 // is parent node (connected to child node)
1763 *status = PHY_PACKET_SELF_ID_PORT_STATUS_CHILD;
1764 break;
1765 default:
1766 // not connected
1767 *status = PHY_PACKET_SELF_ID_PORT_STATUS_NCONN;
1768 break;
1769 }
1770
1771 return 0;
1772 }
1773
get_self_id_pos(struct fw_ohci * ohci,u32 self_id,int self_id_count)1774 static int get_self_id_pos(struct fw_ohci *ohci, u32 self_id,
1775 int self_id_count)
1776 {
1777 unsigned int left_phy_id = phy_packet_self_id_get_phy_id(self_id);
1778 int i;
1779
1780 for (i = 0; i < self_id_count; i++) {
1781 u32 entry = ohci->self_id_buffer[i];
1782 unsigned int right_phy_id = phy_packet_self_id_get_phy_id(entry);
1783
1784 if (left_phy_id == right_phy_id)
1785 return -1;
1786 if (left_phy_id < right_phy_id)
1787 return i;
1788 }
1789 return i;
1790 }
1791
detect_initiated_reset(struct fw_ohci * ohci,bool * is_initiated_reset)1792 static int detect_initiated_reset(struct fw_ohci *ohci, bool *is_initiated_reset)
1793 {
1794 int reg;
1795
1796 guard(mutex)(&ohci->phy_reg_mutex);
1797
1798 // Select page 7
1799 reg = write_phy_reg(ohci, 7, 0xe0);
1800 if (reg < 0)
1801 return reg;
1802
1803 reg = read_phy_reg(ohci, 8);
1804 if (reg < 0)
1805 return reg;
1806
1807 // set PMODE bit
1808 reg |= 0x40;
1809 reg = write_phy_reg(ohci, 8, reg);
1810 if (reg < 0)
1811 return reg;
1812
1813 // read register 12
1814 reg = read_phy_reg(ohci, 12);
1815 if (reg < 0)
1816 return reg;
1817
1818 // bit 3 indicates "initiated reset"
1819 *is_initiated_reset = !!((reg & 0x08) == 0x08);
1820
1821 return 0;
1822 }
1823
1824 /*
1825 * TI TSB82AA2B and TSB12LV26 do not receive the selfID of a locally
1826 * attached TSB41BA3D phy; see http://www.ti.com/litv/pdf/sllz059.
1827 * Construct the selfID from phy register contents.
1828 */
find_and_insert_self_id(struct fw_ohci * ohci,int self_id_count)1829 static int find_and_insert_self_id(struct fw_ohci *ohci, int self_id_count)
1830 {
1831 int reg, i, pos, err;
1832 bool is_initiated_reset;
1833 u32 self_id = 0;
1834
1835 // link active 1, speed 3, bridge 0, contender 1, more packets 0.
1836 phy_packet_set_packet_identifier(&self_id, PHY_PACKET_PACKET_IDENTIFIER_SELF_ID);
1837 phy_packet_self_id_zero_set_link_active(&self_id, true);
1838 phy_packet_self_id_zero_set_scode(&self_id, SCODE_800);
1839 phy_packet_self_id_zero_set_contender(&self_id, true);
1840
1841 reg = reg_read(ohci, OHCI1394_NodeID);
1842 if (!(reg & OHCI1394_NodeID_idValid)) {
1843 ohci_notice(ohci,
1844 "node ID not valid, new bus reset in progress\n");
1845 return -EBUSY;
1846 }
1847 phy_packet_self_id_set_phy_id(&self_id, reg & 0x3f);
1848
1849 reg = ohci_read_phy_reg(&ohci->card, 4);
1850 if (reg < 0)
1851 return reg;
1852 phy_packet_self_id_zero_set_power_class(&self_id, reg & 0x07);
1853
1854 reg = ohci_read_phy_reg(&ohci->card, 1);
1855 if (reg < 0)
1856 return reg;
1857 phy_packet_self_id_zero_set_gap_count(&self_id, reg & 0x3f);
1858
1859 for (i = 0; i < 3; i++) {
1860 enum phy_packet_self_id_port_status status;
1861
1862 err = get_status_for_port(ohci, i, &status);
1863 if (err < 0)
1864 return err;
1865
1866 self_id_sequence_set_port_status(&self_id, 1, i, status);
1867 }
1868
1869 err = detect_initiated_reset(ohci, &is_initiated_reset);
1870 if (err < 0)
1871 return err;
1872 phy_packet_self_id_zero_set_initiated_reset(&self_id, is_initiated_reset);
1873
1874 pos = get_self_id_pos(ohci, self_id, self_id_count);
1875 if (pos >= 0) {
1876 memmove(&(ohci->self_id_buffer[pos+1]),
1877 &(ohci->self_id_buffer[pos]),
1878 (self_id_count - pos) * sizeof(*ohci->self_id_buffer));
1879 ohci->self_id_buffer[pos] = self_id;
1880 self_id_count++;
1881 }
1882 return self_id_count;
1883 }
1884
handle_selfid_complete_event(int irq,void * data)1885 static irqreturn_t handle_selfid_complete_event(int irq, void *data)
1886 {
1887 struct fw_ohci *ohci = data;
1888 int self_id_count, generation, new_generation, i, j;
1889 u32 reg, quadlet;
1890 void *free_rom = NULL;
1891 dma_addr_t free_rom_bus = 0;
1892 bool is_new_root;
1893
1894 reg = reg_read(ohci, OHCI1394_NodeID);
1895 if (!(reg & OHCI1394_NodeID_idValid)) {
1896 ohci_notice(ohci,
1897 "node ID not valid, new bus reset in progress\n");
1898 goto end;
1899 }
1900 if ((reg & OHCI1394_NodeID_nodeNumber) == 63) {
1901 ohci_notice(ohci, "malconfigured bus\n");
1902 goto end;
1903 }
1904 ohci->node_id = reg & (OHCI1394_NodeID_busNumber |
1905 OHCI1394_NodeID_nodeNumber);
1906
1907 is_new_root = (reg & OHCI1394_NodeID_root) != 0;
1908 if (!(ohci->is_root && is_new_root))
1909 reg_write(ohci, OHCI1394_LinkControlSet,
1910 OHCI1394_LinkControl_cycleMaster);
1911 ohci->is_root = is_new_root;
1912
1913 reg = reg_read(ohci, OHCI1394_SelfIDCount);
1914 if (ohci1394_self_id_count_is_error(reg)) {
1915 ohci_notice(ohci, "self ID receive error\n");
1916 goto end;
1917 }
1918
1919 trace_self_id_complete(ohci->card.index, reg, ohci->self_id, has_be_header_quirk(ohci));
1920
1921 /*
1922 * The count in the SelfIDCount register is the number of
1923 * bytes in the self ID receive buffer. Since we also receive
1924 * the inverted quadlets and a header quadlet, we shift one
1925 * bit extra to get the actual number of self IDs.
1926 */
1927 self_id_count = ohci1394_self_id_count_get_size(reg) >> 1;
1928
1929 if (self_id_count > 252) {
1930 ohci_notice(ohci, "bad selfIDSize (%08x)\n", reg);
1931 goto end;
1932 }
1933
1934 quadlet = cond_le32_to_cpu(ohci->self_id[0], has_be_header_quirk(ohci));
1935 generation = ohci1394_self_id_receive_q0_get_generation(quadlet);
1936 rmb();
1937
1938 for (i = 1, j = 0; j < self_id_count; i += 2, j++) {
1939 u32 id = cond_le32_to_cpu(ohci->self_id[i], has_be_header_quirk(ohci));
1940 u32 id2 = cond_le32_to_cpu(ohci->self_id[i + 1], has_be_header_quirk(ohci));
1941
1942 if (id != ~id2) {
1943 /*
1944 * If the invalid data looks like a cycle start packet,
1945 * it's likely to be the result of the cycle master
1946 * having a wrong gap count. In this case, the self IDs
1947 * so far are valid and should be processed so that the
1948 * bus manager can then correct the gap count.
1949 */
1950 if (id == 0xffff008f) {
1951 ohci_notice(ohci, "ignoring spurious self IDs\n");
1952 self_id_count = j;
1953 break;
1954 }
1955
1956 ohci_notice(ohci, "bad self ID %d/%d (%08x != ~%08x)\n",
1957 j, self_id_count, id, id2);
1958 goto end;
1959 }
1960 ohci->self_id_buffer[j] = id;
1961 }
1962
1963 if (ohci->quirks & QUIRK_TI_SLLZ059) {
1964 self_id_count = find_and_insert_self_id(ohci, self_id_count);
1965 if (self_id_count < 0) {
1966 ohci_notice(ohci,
1967 "could not construct local self ID\n");
1968 goto end;
1969 }
1970 }
1971
1972 if (self_id_count == 0) {
1973 ohci_notice(ohci, "no self IDs\n");
1974 goto end;
1975 }
1976 rmb();
1977
1978 /*
1979 * Check the consistency of the self IDs we just read. The
1980 * problem we face is that a new bus reset can start while we
1981 * read out the self IDs from the DMA buffer. If this happens,
1982 * the DMA buffer will be overwritten with new self IDs and we
1983 * will read out inconsistent data. The OHCI specification
1984 * (section 11.2) recommends a technique similar to
1985 * linux/seqlock.h, where we remember the generation of the
1986 * self IDs in the buffer before reading them out and compare
1987 * it to the current generation after reading them out. If
1988 * the two generations match we know we have a consistent set
1989 * of self IDs.
1990 */
1991
1992 reg = reg_read(ohci, OHCI1394_SelfIDCount);
1993 new_generation = ohci1394_self_id_count_get_generation(reg);
1994 if (new_generation != generation) {
1995 ohci_notice(ohci, "new bus reset, discarding self ids\n");
1996 goto end;
1997 }
1998
1999 // FIXME: Document how the locking works.
2000 scoped_guard(spinlock_irq, &ohci->lock) {
2001 ohci->generation = -1; // prevent AT packet queueing
2002 context_stop(&ohci->at_request_ctx.context);
2003 context_stop(&ohci->at_response_ctx.context);
2004 }
2005
2006 /*
2007 * Per OHCI 1.2 draft, clause 7.2.3.3, hardware may leave unsent
2008 * packets in the AT queues and software needs to drain them.
2009 * Some OHCI 1.1 controllers (JMicron) apparently require this too.
2010 */
2011 at_context_flush(&ohci->at_request_ctx);
2012 at_context_flush(&ohci->at_response_ctx);
2013
2014 scoped_guard(spinlock_irq, &ohci->lock) {
2015 ohci->generation = generation;
2016 reg_write(ohci, OHCI1394_IntEventClear, OHCI1394_busReset);
2017 reg_write(ohci, OHCI1394_IntMaskSet, OHCI1394_busReset);
2018
2019 if (ohci->quirks & QUIRK_RESET_PACKET)
2020 ohci->request_generation = generation;
2021
2022 // This next bit is unrelated to the AT context stuff but we have to do it under the
2023 // spinlock also. If a new config rom was set up before this reset, the old one is
2024 // now no longer in use and we can free it. Update the config rom pointers to point
2025 // to the current config rom and clear the next_config_rom pointer so a new update
2026 // can take place.
2027 if (ohci->next_config_rom != NULL) {
2028 if (ohci->next_config_rom != ohci->config_rom) {
2029 free_rom = ohci->config_rom;
2030 free_rom_bus = ohci->config_rom_bus;
2031 }
2032 ohci->config_rom = ohci->next_config_rom;
2033 ohci->config_rom_bus = ohci->next_config_rom_bus;
2034 ohci->next_config_rom = NULL;
2035
2036 // Restore config_rom image and manually update config_rom registers.
2037 // Writing the header quadlet will indicate that the config rom is ready,
2038 // so we do that last.
2039 reg_write(ohci, OHCI1394_BusOptions, be32_to_cpu(ohci->config_rom[2]));
2040 ohci->config_rom[0] = ohci->next_header;
2041 reg_write(ohci, OHCI1394_ConfigROMhdr, be32_to_cpu(ohci->next_header));
2042 }
2043
2044 if (param_remote_dma) {
2045 reg_write(ohci, OHCI1394_PhyReqFilterHiSet, ~0);
2046 reg_write(ohci, OHCI1394_PhyReqFilterLoSet, ~0);
2047 }
2048 }
2049
2050 if (free_rom)
2051 dmam_free_coherent(ohci->card.device, CONFIG_ROM_SIZE, free_rom, free_rom_bus);
2052
2053 fw_core_handle_bus_reset(&ohci->card, ohci->node_id, generation,
2054 self_id_count, ohci->self_id_buffer,
2055 ohci->csr_state_setclear_abdicate);
2056 ohci->csr_state_setclear_abdicate = false;
2057 end:
2058 return IRQ_HANDLED;
2059 }
2060
irq_handler(int irq,void * data)2061 static irqreturn_t irq_handler(int irq, void *data)
2062 {
2063 struct fw_ohci *ohci = data;
2064 u32 event, iso_event;
2065 int i;
2066
2067 event = reg_read(ohci, OHCI1394_IntEventClear);
2068
2069 if (!event || !~event)
2070 return IRQ_NONE;
2071
2072 /*
2073 * busReset and postedWriteErr events must not be cleared yet
2074 * (OHCI 1.1 clauses 7.2.3.2 and 13.2.8.1)
2075 */
2076 reg_write(ohci, OHCI1394_IntEventClear,
2077 event & ~(OHCI1394_busReset | OHCI1394_postedWriteErr));
2078 trace_irqs(ohci->card.index, event);
2079
2080 // The flag is masked again at handle_selfid_complete_event() scheduled by selfID event.
2081 if (event & OHCI1394_busReset)
2082 reg_write(ohci, OHCI1394_IntMaskClear, OHCI1394_busReset);
2083
2084 if (event & OHCI1394_RQPkt)
2085 queue_work(ohci->card.async_wq, &ohci->ar_request_ctx.work);
2086
2087 if (event & OHCI1394_RSPkt)
2088 queue_work(ohci->card.async_wq, &ohci->ar_response_ctx.work);
2089
2090 if (event & OHCI1394_reqTxComplete)
2091 queue_work(ohci->card.async_wq, &ohci->at_request_ctx.work);
2092
2093 if (event & OHCI1394_respTxComplete)
2094 queue_work(ohci->card.async_wq, &ohci->at_response_ctx.work);
2095
2096 if (event & OHCI1394_isochRx) {
2097 iso_event = reg_read(ohci, OHCI1394_IsoRecvIntEventClear);
2098 reg_write(ohci, OHCI1394_IsoRecvIntEventClear, iso_event);
2099
2100 while (iso_event) {
2101 i = ffs(iso_event) - 1;
2102 fw_iso_context_schedule_flush_completions(&ohci->ir_context_list[i].base);
2103 iso_event &= ~(1 << i);
2104 }
2105 }
2106
2107 if (event & OHCI1394_isochTx) {
2108 iso_event = reg_read(ohci, OHCI1394_IsoXmitIntEventClear);
2109 reg_write(ohci, OHCI1394_IsoXmitIntEventClear, iso_event);
2110
2111 while (iso_event) {
2112 i = ffs(iso_event) - 1;
2113 fw_iso_context_schedule_flush_completions(&ohci->it_context_list[i].base);
2114 iso_event &= ~(1 << i);
2115 }
2116 }
2117
2118 if (unlikely(event & OHCI1394_regAccessFail))
2119 ohci_err(ohci, "register access failure\n");
2120
2121 if (unlikely(event & OHCI1394_postedWriteErr)) {
2122 reg_read(ohci, OHCI1394_PostedWriteAddressHi);
2123 reg_read(ohci, OHCI1394_PostedWriteAddressLo);
2124 reg_write(ohci, OHCI1394_IntEventClear,
2125 OHCI1394_postedWriteErr);
2126 dev_err_ratelimited(ohci->card.device, "PCI posted write error\n");
2127 }
2128
2129 if (unlikely(event & OHCI1394_cycleTooLong)) {
2130 dev_notice_ratelimited(ohci->card.device, "isochronous cycle too long\n");
2131 reg_write(ohci, OHCI1394_LinkControlSet,
2132 OHCI1394_LinkControl_cycleMaster);
2133 }
2134
2135 if (unlikely(event & OHCI1394_cycleInconsistent)) {
2136 /*
2137 * We need to clear this event bit in order to make
2138 * cycleMatch isochronous I/O work. In theory we should
2139 * stop active cycleMatch iso contexts now and restart
2140 * them at least two cycles later. (FIXME?)
2141 */
2142 dev_notice_ratelimited(ohci->card.device, "isochronous cycle inconsistent\n");
2143 }
2144
2145 if (unlikely(event & OHCI1394_unrecoverableError))
2146 handle_dead_contexts(ohci);
2147
2148 if (event & OHCI1394_cycle64Seconds) {
2149 guard(spinlock)(&ohci->lock);
2150 update_bus_time(ohci);
2151 } else
2152 flush_writes(ohci);
2153
2154 if (event & OHCI1394_selfIDComplete)
2155 return IRQ_WAKE_THREAD;
2156 else
2157 return IRQ_HANDLED;
2158 }
2159
software_reset(struct fw_ohci * ohci)2160 static int software_reset(struct fw_ohci *ohci)
2161 {
2162 u32 val;
2163 int i;
2164
2165 reg_write(ohci, OHCI1394_HCControlSet, OHCI1394_HCControl_softReset);
2166 for (i = 0; i < 500; i++) {
2167 val = reg_read(ohci, OHCI1394_HCControlSet);
2168 if (!~val)
2169 return -ENODEV; /* Card was ejected. */
2170
2171 if (!(val & OHCI1394_HCControl_softReset))
2172 return 0;
2173
2174 msleep(1);
2175 }
2176
2177 return -EBUSY;
2178 }
2179
copy_config_rom(__be32 * dest,const __be32 * src,size_t length)2180 static void copy_config_rom(__be32 *dest, const __be32 *src, size_t length)
2181 {
2182 size_t size = length * 4;
2183
2184 memcpy(dest, src, size);
2185 if (size < CONFIG_ROM_SIZE)
2186 memset(&dest[length], 0, CONFIG_ROM_SIZE - size);
2187 }
2188
configure_1394a_enhancements(struct fw_ohci * ohci)2189 static int configure_1394a_enhancements(struct fw_ohci *ohci)
2190 {
2191 bool enable_1394a;
2192 int ret, clear, set, offset;
2193
2194 /* Check if the driver should configure link and PHY. */
2195 if (!(reg_read(ohci, OHCI1394_HCControlSet) &
2196 OHCI1394_HCControl_programPhyEnable))
2197 return 0;
2198
2199 /* Paranoia: check whether the PHY supports 1394a, too. */
2200 enable_1394a = false;
2201 ret = read_phy_reg(ohci, 2);
2202 if (ret < 0)
2203 return ret;
2204 if ((ret & PHY_EXTENDED_REGISTERS) == PHY_EXTENDED_REGISTERS) {
2205 ret = read_paged_phy_reg(ohci, 1, 8);
2206 if (ret < 0)
2207 return ret;
2208 if (ret >= 1)
2209 enable_1394a = true;
2210 }
2211
2212 if (ohci->quirks & QUIRK_NO_1394A)
2213 enable_1394a = false;
2214
2215 /* Configure PHY and link consistently. */
2216 if (enable_1394a) {
2217 clear = 0;
2218 set = PHY_ENABLE_ACCEL | PHY_ENABLE_MULTI;
2219 } else {
2220 clear = PHY_ENABLE_ACCEL | PHY_ENABLE_MULTI;
2221 set = 0;
2222 }
2223 ret = update_phy_reg(ohci, 5, clear, set);
2224 if (ret < 0)
2225 return ret;
2226
2227 if (enable_1394a)
2228 offset = OHCI1394_HCControlSet;
2229 else
2230 offset = OHCI1394_HCControlClear;
2231 reg_write(ohci, offset, OHCI1394_HCControl_aPhyEnhanceEnable);
2232
2233 /* Clean up: configuration has been taken care of. */
2234 reg_write(ohci, OHCI1394_HCControlClear,
2235 OHCI1394_HCControl_programPhyEnable);
2236
2237 return 0;
2238 }
2239
probe_tsb41ba3d(struct fw_ohci * ohci)2240 static int probe_tsb41ba3d(struct fw_ohci *ohci)
2241 {
2242 /* TI vendor ID = 0x080028, TSB41BA3D product ID = 0x833005 (sic) */
2243 static const u8 id[] = { 0x08, 0x00, 0x28, 0x83, 0x30, 0x05, };
2244 int reg, i;
2245
2246 reg = read_phy_reg(ohci, 2);
2247 if (reg < 0)
2248 return reg;
2249 if ((reg & PHY_EXTENDED_REGISTERS) != PHY_EXTENDED_REGISTERS)
2250 return 0;
2251
2252 for (i = ARRAY_SIZE(id) - 1; i >= 0; i--) {
2253 reg = read_paged_phy_reg(ohci, 1, i + 10);
2254 if (reg < 0)
2255 return reg;
2256 if (reg != id[i])
2257 return 0;
2258 }
2259 return 1;
2260 }
2261
ohci_enable(struct fw_card * card,const __be32 * config_rom,size_t length)2262 static int ohci_enable(struct fw_card *card,
2263 const __be32 *config_rom, size_t length)
2264 {
2265 struct fw_ohci *ohci = fw_ohci(card);
2266 u32 lps, version, irqs;
2267 int i, ret;
2268
2269 ret = software_reset(ohci);
2270 if (ret < 0) {
2271 ohci_err(ohci, "failed to reset ohci card\n");
2272 return ret;
2273 }
2274
2275 /*
2276 * Now enable LPS, which we need in order to start accessing
2277 * most of the registers. In fact, on some cards (ALI M5251),
2278 * accessing registers in the SClk domain without LPS enabled
2279 * will lock up the machine. Wait 50msec to make sure we have
2280 * full link enabled. However, with some cards (well, at least
2281 * a JMicron PCIe card), we have to try again sometimes.
2282 *
2283 * TI TSB82AA2 + TSB81BA3(A) cards signal LPS enabled early but
2284 * cannot actually use the phy at that time. These need tens of
2285 * millisecods pause between LPS write and first phy access too.
2286 */
2287
2288 reg_write(ohci, OHCI1394_HCControlSet,
2289 OHCI1394_HCControl_LPS |
2290 OHCI1394_HCControl_postedWriteEnable);
2291 flush_writes(ohci);
2292
2293 for (lps = 0, i = 0; !lps && i < 3; i++) {
2294 msleep(50);
2295 lps = reg_read(ohci, OHCI1394_HCControlSet) &
2296 OHCI1394_HCControl_LPS;
2297 }
2298
2299 if (!lps) {
2300 ohci_err(ohci, "failed to set Link Power Status\n");
2301 return -EIO;
2302 }
2303
2304 if (ohci->quirks & QUIRK_TI_SLLZ059) {
2305 ret = probe_tsb41ba3d(ohci);
2306 if (ret < 0)
2307 return ret;
2308 if (ret)
2309 ohci_notice(ohci, "local TSB41BA3D phy\n");
2310 else
2311 ohci->quirks &= ~QUIRK_TI_SLLZ059;
2312 }
2313
2314 reg_write(ohci, OHCI1394_HCControlClear,
2315 OHCI1394_HCControl_noByteSwapData);
2316
2317 reg_write(ohci, OHCI1394_SelfIDBuffer, ohci->self_id_bus);
2318 reg_write(ohci, OHCI1394_LinkControlSet,
2319 OHCI1394_LinkControl_cycleTimerEnable |
2320 OHCI1394_LinkControl_cycleMaster);
2321
2322 reg_write(ohci, OHCI1394_ATRetries,
2323 OHCI1394_MAX_AT_REQ_RETRIES |
2324 (OHCI1394_MAX_AT_RESP_RETRIES << 4) |
2325 (OHCI1394_MAX_PHYS_RESP_RETRIES << 8) |
2326 (200 << 16));
2327
2328 ohci->bus_time_running = false;
2329
2330 for (i = 0; i < 32; i++)
2331 if (ohci->ir_context_support & (1 << i))
2332 reg_write(ohci, OHCI1394_IsoRcvContextControlClear(i),
2333 IR_CONTEXT_MULTI_CHANNEL_MODE);
2334
2335 version = reg_read(ohci, OHCI1394_Version) & 0x00ff00ff;
2336 if (version >= OHCI_VERSION_1_1) {
2337 reg_write(ohci, OHCI1394_InitialChannelsAvailableHi,
2338 0xfffffffe);
2339 card->broadcast_channel_auto_allocated = true;
2340 }
2341
2342 /* Get implemented bits of the priority arbitration request counter. */
2343 reg_write(ohci, OHCI1394_FairnessControl, 0x3f);
2344 ohci->pri_req_max = reg_read(ohci, OHCI1394_FairnessControl) & 0x3f;
2345 reg_write(ohci, OHCI1394_FairnessControl, 0);
2346 card->priority_budget_implemented = ohci->pri_req_max != 0;
2347
2348 reg_write(ohci, OHCI1394_PhyUpperBound, FW_MAX_PHYSICAL_RANGE >> 16);
2349 reg_write(ohci, OHCI1394_IntEventClear, ~0);
2350 reg_write(ohci, OHCI1394_IntMaskClear, ~0);
2351
2352 ret = configure_1394a_enhancements(ohci);
2353 if (ret < 0)
2354 return ret;
2355
2356 /* Activate link_on bit and contender bit in our self ID packets.*/
2357 ret = ohci_update_phy_reg(card, 4, 0, PHY_LINK_ACTIVE | PHY_CONTENDER);
2358 if (ret < 0)
2359 return ret;
2360
2361 /*
2362 * When the link is not yet enabled, the atomic config rom
2363 * update mechanism described below in ohci_set_config_rom()
2364 * is not active. We have to update ConfigRomHeader and
2365 * BusOptions manually, and the write to ConfigROMmap takes
2366 * effect immediately. We tie this to the enabling of the
2367 * link, so we have a valid config rom before enabling - the
2368 * OHCI requires that ConfigROMhdr and BusOptions have valid
2369 * values before enabling.
2370 *
2371 * However, when the ConfigROMmap is written, some controllers
2372 * always read back quadlets 0 and 2 from the config rom to
2373 * the ConfigRomHeader and BusOptions registers on bus reset.
2374 * They shouldn't do that in this initial case where the link
2375 * isn't enabled. This means we have to use the same
2376 * workaround here, setting the bus header to 0 and then write
2377 * the right values in the bus reset work item.
2378 */
2379
2380 if (config_rom) {
2381 ohci->next_config_rom = dmam_alloc_coherent(ohci->card.device, CONFIG_ROM_SIZE,
2382 &ohci->next_config_rom_bus, GFP_KERNEL);
2383 if (ohci->next_config_rom == NULL)
2384 return -ENOMEM;
2385
2386 copy_config_rom(ohci->next_config_rom, config_rom, length);
2387 } else {
2388 /*
2389 * In the suspend case, config_rom is NULL, which
2390 * means that we just reuse the old config rom.
2391 */
2392 ohci->next_config_rom = ohci->config_rom;
2393 ohci->next_config_rom_bus = ohci->config_rom_bus;
2394 }
2395
2396 ohci->next_header = ohci->next_config_rom[0];
2397 ohci->next_config_rom[0] = 0;
2398 reg_write(ohci, OHCI1394_ConfigROMhdr, 0);
2399 reg_write(ohci, OHCI1394_BusOptions,
2400 be32_to_cpu(ohci->next_config_rom[2]));
2401 reg_write(ohci, OHCI1394_ConfigROMmap, ohci->next_config_rom_bus);
2402
2403 reg_write(ohci, OHCI1394_AsReqFilterHiSet, 0x80000000);
2404
2405 irqs = OHCI1394_reqTxComplete | OHCI1394_respTxComplete |
2406 OHCI1394_RQPkt | OHCI1394_RSPkt |
2407 OHCI1394_isochTx | OHCI1394_isochRx |
2408 OHCI1394_postedWriteErr |
2409 OHCI1394_selfIDComplete |
2410 OHCI1394_regAccessFail |
2411 OHCI1394_cycleInconsistent |
2412 OHCI1394_unrecoverableError |
2413 OHCI1394_cycleTooLong |
2414 OHCI1394_masterIntEnable |
2415 OHCI1394_busReset;
2416 reg_write(ohci, OHCI1394_IntMaskSet, irqs);
2417
2418 reg_write(ohci, OHCI1394_HCControlSet,
2419 OHCI1394_HCControl_linkEnable |
2420 OHCI1394_HCControl_BIBimageValid);
2421
2422 reg_write(ohci, OHCI1394_LinkControlSet,
2423 OHCI1394_LinkControl_rcvSelfID |
2424 OHCI1394_LinkControl_rcvPhyPkt);
2425
2426 ar_context_run(&ohci->ar_request_ctx);
2427 ar_context_run(&ohci->ar_response_ctx);
2428
2429 flush_writes(ohci);
2430
2431 /* We are ready to go, reset bus to finish initialization. */
2432 fw_schedule_bus_reset(&ohci->card, false, true);
2433
2434 return 0;
2435 }
2436
ohci_disable(struct fw_card * card)2437 static void ohci_disable(struct fw_card *card)
2438 {
2439 struct pci_dev *pdev = to_pci_dev(card->device);
2440 struct fw_ohci *ohci = pci_get_drvdata(pdev);
2441 int i, irq = pci_irq_vector(pdev, 0);
2442
2443 // If the removal is happening from the suspend state, LPS won't be enabled and host
2444 // registers (eg., IntMaskClear) won't be accessible.
2445 if (!(reg_read(ohci, OHCI1394_HCControlSet) & OHCI1394_HCControl_LPS))
2446 return;
2447
2448 reg_write(ohci, OHCI1394_IntMaskClear, ~0);
2449 flush_writes(ohci);
2450
2451 if (irq >= 0)
2452 synchronize_irq(irq);
2453
2454 flush_work(&ohci->ar_request_ctx.work);
2455 flush_work(&ohci->ar_response_ctx.work);
2456 flush_work(&ohci->at_request_ctx.work);
2457 flush_work(&ohci->at_response_ctx.work);
2458
2459 for (i = 0; i < ohci->n_ir; ++i) {
2460 if (!(ohci->ir_context_mask & BIT(i)))
2461 flush_work(&ohci->ir_context_list[i].base.work);
2462 }
2463 for (i = 0; i < ohci->n_it; ++i) {
2464 if (!(ohci->it_context_mask & BIT(i)))
2465 flush_work(&ohci->it_context_list[i].base.work);
2466 }
2467
2468 at_context_flush(&ohci->at_request_ctx);
2469 at_context_flush(&ohci->at_response_ctx);
2470 }
2471
ohci_set_config_rom(struct fw_card * card,const __be32 * config_rom,size_t length)2472 static int ohci_set_config_rom(struct fw_card *card,
2473 const __be32 *config_rom, size_t length)
2474 {
2475 struct fw_ohci *ohci;
2476 __be32 *next_config_rom;
2477 dma_addr_t next_config_rom_bus;
2478
2479 ohci = fw_ohci(card);
2480
2481 /*
2482 * When the OHCI controller is enabled, the config rom update
2483 * mechanism is a bit tricky, but easy enough to use. See
2484 * section 5.5.6 in the OHCI specification.
2485 *
2486 * The OHCI controller caches the new config rom address in a
2487 * shadow register (ConfigROMmapNext) and needs a bus reset
2488 * for the changes to take place. When the bus reset is
2489 * detected, the controller loads the new values for the
2490 * ConfigRomHeader and BusOptions registers from the specified
2491 * config rom and loads ConfigROMmap from the ConfigROMmapNext
2492 * shadow register. All automatically and atomically.
2493 *
2494 * Now, there's a twist to this story. The automatic load of
2495 * ConfigRomHeader and BusOptions doesn't honor the
2496 * noByteSwapData bit, so with a be32 config rom, the
2497 * controller will load be32 values in to these registers
2498 * during the atomic update, even on little endian
2499 * architectures. The workaround we use is to put a 0 in the
2500 * header quadlet; 0 is endian agnostic and means that the
2501 * config rom isn't ready yet. In the bus reset work item we
2502 * then set up the real values for the two registers.
2503 *
2504 * We use ohci->lock to avoid racing with the code that sets
2505 * ohci->next_config_rom to NULL (see handle_selfid_complete_event).
2506 */
2507
2508 next_config_rom = dmam_alloc_coherent(ohci->card.device, CONFIG_ROM_SIZE,
2509 &next_config_rom_bus, GFP_KERNEL);
2510 if (next_config_rom == NULL)
2511 return -ENOMEM;
2512
2513 scoped_guard(spinlock_irq, &ohci->lock) {
2514 // If there is not an already pending config_rom update, push our new allocation
2515 // into the ohci->next_config_rom and then mark the local variable as null so that
2516 // we won't deallocate the new buffer.
2517 //
2518 // OTOH, if there is a pending config_rom update, just use that buffer with the new
2519 // config_rom data, and let this routine free the unused DMA allocation.
2520 if (ohci->next_config_rom == NULL) {
2521 ohci->next_config_rom = next_config_rom;
2522 ohci->next_config_rom_bus = next_config_rom_bus;
2523 next_config_rom = NULL;
2524 }
2525
2526 copy_config_rom(ohci->next_config_rom, config_rom, length);
2527
2528 ohci->next_header = config_rom[0];
2529 ohci->next_config_rom[0] = 0;
2530
2531 reg_write(ohci, OHCI1394_ConfigROMmap, ohci->next_config_rom_bus);
2532 }
2533
2534 /* If we didn't use the DMA allocation, delete it. */
2535 if (next_config_rom != NULL) {
2536 dmam_free_coherent(ohci->card.device, CONFIG_ROM_SIZE, next_config_rom,
2537 next_config_rom_bus);
2538 }
2539
2540 /*
2541 * Now initiate a bus reset to have the changes take
2542 * effect. We clean up the old config rom memory and DMA
2543 * mappings in the bus reset work item, since the OHCI
2544 * controller could need to access it before the bus reset
2545 * takes effect.
2546 */
2547
2548 fw_schedule_bus_reset(&ohci->card, true, true);
2549
2550 return 0;
2551 }
2552
ohci_send_request(struct fw_card * card,struct fw_packet * packet)2553 static void ohci_send_request(struct fw_card *card, struct fw_packet *packet)
2554 {
2555 struct fw_ohci *ohci = fw_ohci(card);
2556
2557 at_context_transmit(&ohci->at_request_ctx, packet);
2558 }
2559
ohci_send_response(struct fw_card * card,struct fw_packet * packet)2560 static void ohci_send_response(struct fw_card *card, struct fw_packet *packet)
2561 {
2562 struct fw_ohci *ohci = fw_ohci(card);
2563
2564 at_context_transmit(&ohci->at_response_ctx, packet);
2565 }
2566
ohci_cancel_packet(struct fw_card * card,struct fw_packet * packet)2567 static int ohci_cancel_packet(struct fw_card *card, struct fw_packet *packet)
2568 {
2569 struct fw_ohci *ohci = fw_ohci(card);
2570 struct at_context *ctx = &ohci->at_request_ctx;
2571 struct driver_data *driver_data = packet->driver_data;
2572 int ret = -ENOENT;
2573
2574 // Avoid dead lock due to programming mistake.
2575 if (WARN_ON_ONCE(current_work() == &ctx->work))
2576 return 0;
2577 disable_work_sync(&ctx->work);
2578
2579 if (packet->ack != 0)
2580 goto out;
2581
2582 if (packet->payload_mapped)
2583 dma_unmap_single(ohci->card.device, packet->payload_bus,
2584 packet->payload_length, DMA_TO_DEVICE);
2585
2586 driver_data->packet = NULL;
2587 packet->ack = RCODE_CANCELLED;
2588
2589 // Timestamping on behalf of the hardware.
2590 packet->timestamp = cycle_time_to_ohci_tstamp(get_cycle_time(ohci));
2591
2592 packet->callback(packet, &ohci->card, packet->ack);
2593 ret = 0;
2594 out:
2595 enable_work(&ctx->work);
2596
2597 return ret;
2598 }
2599
ohci_enable_phys_dma(struct fw_card * card,int node_id,int generation)2600 static int ohci_enable_phys_dma(struct fw_card *card,
2601 int node_id, int generation)
2602 {
2603 struct fw_ohci *ohci = fw_ohci(card);
2604 int n, ret = 0;
2605
2606 if (param_remote_dma)
2607 return 0;
2608
2609 /*
2610 * FIXME: Make sure this bitmask is cleared when we clear the busReset
2611 * interrupt bit. Clear physReqResourceAllBuses on bus reset.
2612 */
2613
2614 guard(spinlock_irqsave)(&ohci->lock);
2615
2616 if (ohci->generation != generation)
2617 return -ESTALE;
2618
2619 /*
2620 * Note, if the node ID contains a non-local bus ID, physical DMA is
2621 * enabled for _all_ nodes on remote buses.
2622 */
2623
2624 n = (node_id & 0xffc0) == LOCAL_BUS ? node_id & 0x3f : 63;
2625 if (n < 32)
2626 reg_write(ohci, OHCI1394_PhyReqFilterLoSet, 1 << n);
2627 else
2628 reg_write(ohci, OHCI1394_PhyReqFilterHiSet, 1 << (n - 32));
2629
2630 flush_writes(ohci);
2631
2632 return ret;
2633 }
2634
ohci_read_csr(struct fw_card * card,int csr_offset)2635 static u32 ohci_read_csr(struct fw_card *card, int csr_offset)
2636 {
2637 struct fw_ohci *ohci = fw_ohci(card);
2638 u32 value;
2639
2640 switch (csr_offset) {
2641 case CSR_STATE_CLEAR:
2642 case CSR_STATE_SET:
2643 if (ohci->is_root &&
2644 (reg_read(ohci, OHCI1394_LinkControlSet) &
2645 OHCI1394_LinkControl_cycleMaster))
2646 value = CSR_STATE_BIT_CMSTR;
2647 else
2648 value = 0;
2649 if (ohci->csr_state_setclear_abdicate)
2650 value |= CSR_STATE_BIT_ABDICATE;
2651
2652 return value;
2653
2654 case CSR_NODE_IDS:
2655 return reg_read(ohci, OHCI1394_NodeID) << 16;
2656
2657 case CSR_CYCLE_TIME:
2658 return get_cycle_time(ohci);
2659
2660 case CSR_BUS_TIME:
2661 {
2662 // We might be called just after the cycle timer has wrapped around but just before
2663 // the cycle64Seconds handler, so we better check here, too, if the bus time needs
2664 // to be updated.
2665
2666 guard(spinlock_irqsave)(&ohci->lock);
2667 return update_bus_time(ohci);
2668 }
2669 case CSR_BUSY_TIMEOUT:
2670 value = reg_read(ohci, OHCI1394_ATRetries);
2671 return (value >> 4) & 0x0ffff00f;
2672
2673 case CSR_PRIORITY_BUDGET:
2674 return (reg_read(ohci, OHCI1394_FairnessControl) & 0x3f) |
2675 (ohci->pri_req_max << 8);
2676
2677 default:
2678 WARN_ON(1);
2679 return 0;
2680 }
2681 }
2682
ohci_write_csr(struct fw_card * card,int csr_offset,u32 value)2683 static void ohci_write_csr(struct fw_card *card, int csr_offset, u32 value)
2684 {
2685 struct fw_ohci *ohci = fw_ohci(card);
2686
2687 switch (csr_offset) {
2688 case CSR_STATE_CLEAR:
2689 if ((value & CSR_STATE_BIT_CMSTR) && ohci->is_root) {
2690 reg_write(ohci, OHCI1394_LinkControlClear,
2691 OHCI1394_LinkControl_cycleMaster);
2692 flush_writes(ohci);
2693 }
2694 if (value & CSR_STATE_BIT_ABDICATE)
2695 ohci->csr_state_setclear_abdicate = false;
2696 break;
2697
2698 case CSR_STATE_SET:
2699 if ((value & CSR_STATE_BIT_CMSTR) && ohci->is_root) {
2700 reg_write(ohci, OHCI1394_LinkControlSet,
2701 OHCI1394_LinkControl_cycleMaster);
2702 flush_writes(ohci);
2703 }
2704 if (value & CSR_STATE_BIT_ABDICATE)
2705 ohci->csr_state_setclear_abdicate = true;
2706 break;
2707
2708 case CSR_NODE_IDS:
2709 reg_write(ohci, OHCI1394_NodeID, value >> 16);
2710 flush_writes(ohci);
2711 break;
2712
2713 case CSR_CYCLE_TIME:
2714 reg_write(ohci, OHCI1394_IsochronousCycleTimer, value);
2715 reg_write(ohci, OHCI1394_IntEventSet,
2716 OHCI1394_cycleInconsistent);
2717 flush_writes(ohci);
2718 break;
2719
2720 case CSR_BUS_TIME:
2721 {
2722 guard(spinlock_irqsave)(&ohci->lock);
2723 ohci->bus_time = (update_bus_time(ohci) & 0x40) | (value & ~0x7f);
2724 break;
2725 }
2726 case CSR_BUSY_TIMEOUT:
2727 value = (value & 0xf) | ((value & 0xf) << 4) |
2728 ((value & 0xf) << 8) | ((value & 0x0ffff000) << 4);
2729 reg_write(ohci, OHCI1394_ATRetries, value);
2730 flush_writes(ohci);
2731 break;
2732
2733 case CSR_PRIORITY_BUDGET:
2734 reg_write(ohci, OHCI1394_FairnessControl, value & 0x3f);
2735 flush_writes(ohci);
2736 break;
2737
2738 default:
2739 WARN_ON(1);
2740 break;
2741 }
2742 }
2743
flush_iso_completions(struct iso_context * ctx,enum fw_iso_context_completions_cause cause)2744 static void flush_iso_completions(struct iso_context *ctx, enum fw_iso_context_completions_cause cause)
2745 {
2746 trace_isoc_inbound_single_completions(&ctx->base, ctx->sc.last_timestamp, cause,
2747 ctx->sc.header, ctx->sc.header_length);
2748 trace_isoc_outbound_completions(&ctx->base, ctx->sc.last_timestamp, cause, ctx->sc.header,
2749 ctx->sc.header_length);
2750
2751 ctx->base.callback.sc(&ctx->base, ctx->sc.last_timestamp, ctx->sc.header_length,
2752 ctx->sc.header, ctx->base.callback_data);
2753 ctx->sc.header_length = 0;
2754 }
2755
copy_iso_headers(struct iso_context * ctx,const u32 * dma_hdr)2756 static void copy_iso_headers(struct iso_context *ctx, const u32 *dma_hdr)
2757 {
2758 u32 *ctx_hdr;
2759
2760 if (ctx->sc.header_length + ctx->base.header_size > ctx->base.header_storage_size) {
2761 if (ctx->base.flags & FW_ISO_CONTEXT_FLAG_DROP_OVERFLOW_HEADERS)
2762 return;
2763 flush_iso_completions(ctx, FW_ISO_CONTEXT_COMPLETIONS_CAUSE_HEADER_OVERFLOW);
2764 }
2765
2766 ctx_hdr = ctx->sc.header + ctx->sc.header_length;
2767 ctx->sc.last_timestamp = (u16)le32_to_cpu((__force __le32)dma_hdr[0]);
2768
2769 /*
2770 * The two iso header quadlets are byteswapped to little
2771 * endian by the controller, but we want to present them
2772 * as big endian for consistency with the bus endianness.
2773 */
2774 if (ctx->base.header_size > 0)
2775 ctx_hdr[0] = swab32(dma_hdr[1]); /* iso packet header */
2776 if (ctx->base.header_size > 4)
2777 ctx_hdr[1] = swab32(dma_hdr[0]); /* timestamp */
2778 if (ctx->base.header_size > 8)
2779 memcpy(&ctx_hdr[2], &dma_hdr[2], ctx->base.header_size - 8);
2780 ctx->sc.header_length += ctx->base.header_size;
2781 }
2782
handle_ir_packet_per_buffer(struct context * context,struct descriptor * d,struct descriptor * last)2783 static int handle_ir_packet_per_buffer(struct context *context,
2784 struct descriptor *d,
2785 struct descriptor *last)
2786 {
2787 struct iso_context *ctx =
2788 container_of(context, struct iso_context, context);
2789 struct descriptor *pd;
2790 u32 buffer_dma;
2791
2792 for (pd = d; pd <= last; pd++)
2793 if (pd->transfer_status)
2794 break;
2795 if (pd > last)
2796 /* Descriptor(s) not done yet, stop iteration */
2797 return 0;
2798
2799 while (!(d->control & cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS))) {
2800 d++;
2801 buffer_dma = le32_to_cpu(d->data_address);
2802 dma_sync_single_range_for_cpu(context->ohci->card.device,
2803 buffer_dma & PAGE_MASK,
2804 buffer_dma & ~PAGE_MASK,
2805 le16_to_cpu(d->req_count),
2806 DMA_FROM_DEVICE);
2807 }
2808
2809 copy_iso_headers(ctx, (u32 *) (last + 1));
2810
2811 if (last->control & cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS))
2812 flush_iso_completions(ctx, FW_ISO_CONTEXT_COMPLETIONS_CAUSE_INTERRUPT);
2813
2814 return 1;
2815 }
2816
2817 /* d == last because each descriptor block is only a single descriptor. */
handle_ir_buffer_fill(struct context * context,struct descriptor * d,struct descriptor * last)2818 static int handle_ir_buffer_fill(struct context *context,
2819 struct descriptor *d,
2820 struct descriptor *last)
2821 {
2822 struct iso_context *ctx =
2823 container_of(context, struct iso_context, context);
2824 unsigned int req_count, res_count, completed;
2825 u32 buffer_dma;
2826
2827 req_count = le16_to_cpu(last->req_count);
2828 res_count = le16_to_cpu(READ_ONCE(last->res_count));
2829 completed = req_count - res_count;
2830 buffer_dma = le32_to_cpu(last->data_address);
2831
2832 if (completed > 0) {
2833 ctx->mc.buffer_bus = buffer_dma;
2834 ctx->mc.completed = completed;
2835 }
2836
2837 if (res_count != 0)
2838 /* Descriptor(s) not done yet, stop iteration */
2839 return 0;
2840
2841 dma_sync_single_range_for_cpu(context->ohci->card.device,
2842 buffer_dma & PAGE_MASK,
2843 buffer_dma & ~PAGE_MASK,
2844 completed, DMA_FROM_DEVICE);
2845
2846 if (last->control & cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS)) {
2847 trace_isoc_inbound_multiple_completions(&ctx->base, completed,
2848 FW_ISO_CONTEXT_COMPLETIONS_CAUSE_INTERRUPT);
2849
2850 ctx->base.callback.mc(&ctx->base,
2851 buffer_dma + completed,
2852 ctx->base.callback_data);
2853 ctx->mc.completed = 0;
2854 }
2855
2856 return 1;
2857 }
2858
flush_ir_buffer_fill(struct iso_context * ctx)2859 static void flush_ir_buffer_fill(struct iso_context *ctx)
2860 {
2861 dma_sync_single_range_for_cpu(ctx->context.ohci->card.device,
2862 ctx->mc.buffer_bus & PAGE_MASK,
2863 ctx->mc.buffer_bus & ~PAGE_MASK,
2864 ctx->mc.completed, DMA_FROM_DEVICE);
2865
2866 trace_isoc_inbound_multiple_completions(&ctx->base, ctx->mc.completed,
2867 FW_ISO_CONTEXT_COMPLETIONS_CAUSE_FLUSH);
2868
2869 ctx->base.callback.mc(&ctx->base, ctx->mc.buffer_bus + ctx->mc.completed,
2870 ctx->base.callback_data);
2871 ctx->mc.completed = 0;
2872 }
2873
sync_it_packet_for_cpu(struct context * context,struct descriptor * pd)2874 static inline void sync_it_packet_for_cpu(struct context *context,
2875 struct descriptor *pd)
2876 {
2877 __le16 control;
2878 u32 buffer_dma;
2879
2880 /* only packets beginning with OUTPUT_MORE* have data buffers */
2881 if (pd->control & cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS))
2882 return;
2883
2884 /* skip over the OUTPUT_MORE_IMMEDIATE descriptor */
2885 pd += 2;
2886
2887 /*
2888 * If the packet has a header, the first OUTPUT_MORE/LAST descriptor's
2889 * data buffer is in the context program's coherent page and must not
2890 * be synced.
2891 */
2892 if ((le32_to_cpu(pd->data_address) & PAGE_MASK) ==
2893 (context->current_bus & PAGE_MASK)) {
2894 if (pd->control & cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS))
2895 return;
2896 pd++;
2897 }
2898
2899 do {
2900 buffer_dma = le32_to_cpu(pd->data_address);
2901 dma_sync_single_range_for_cpu(context->ohci->card.device,
2902 buffer_dma & PAGE_MASK,
2903 buffer_dma & ~PAGE_MASK,
2904 le16_to_cpu(pd->req_count),
2905 DMA_TO_DEVICE);
2906 control = pd->control;
2907 pd++;
2908 } while (!(control & cpu_to_le16(DESCRIPTOR_BRANCH_ALWAYS)));
2909 }
2910
handle_it_packet(struct context * context,struct descriptor * d,struct descriptor * last)2911 static int handle_it_packet(struct context *context,
2912 struct descriptor *d,
2913 struct descriptor *last)
2914 {
2915 struct iso_context *ctx =
2916 container_of(context, struct iso_context, context);
2917 struct descriptor *pd;
2918 __be32 *ctx_hdr;
2919
2920 for (pd = d; pd <= last; pd++)
2921 if (pd->transfer_status)
2922 break;
2923 if (pd > last)
2924 /* Descriptor(s) not done yet, stop iteration */
2925 return 0;
2926
2927 sync_it_packet_for_cpu(context, d);
2928
2929 if (ctx->sc.header_length + 4 > ctx->base.header_storage_size) {
2930 if (ctx->base.flags & FW_ISO_CONTEXT_FLAG_DROP_OVERFLOW_HEADERS)
2931 return 1;
2932 flush_iso_completions(ctx, FW_ISO_CONTEXT_COMPLETIONS_CAUSE_HEADER_OVERFLOW);
2933 }
2934
2935 ctx_hdr = ctx->sc.header + ctx->sc.header_length;
2936 ctx->sc.last_timestamp = le16_to_cpu(last->res_count);
2937 /* Present this value as big-endian to match the receive code */
2938 *ctx_hdr = cpu_to_be32((le16_to_cpu(pd->transfer_status) << 16) |
2939 le16_to_cpu(pd->res_count));
2940 ctx->sc.header_length += 4;
2941
2942 if (last->control & cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS))
2943 flush_iso_completions(ctx, FW_ISO_CONTEXT_COMPLETIONS_CAUSE_INTERRUPT);
2944
2945 return 1;
2946 }
2947
set_multichannel_mask(struct fw_ohci * ohci,u64 channels)2948 static void set_multichannel_mask(struct fw_ohci *ohci, u64 channels)
2949 {
2950 u32 hi = channels >> 32, lo = channels;
2951
2952 reg_write(ohci, OHCI1394_IRMultiChanMaskHiClear, ~hi);
2953 reg_write(ohci, OHCI1394_IRMultiChanMaskLoClear, ~lo);
2954 reg_write(ohci, OHCI1394_IRMultiChanMaskHiSet, hi);
2955 reg_write(ohci, OHCI1394_IRMultiChanMaskLoSet, lo);
2956 ohci->mc_channels = channels;
2957 }
2958
ohci_allocate_iso_context(struct fw_card * card,int type,int channel,size_t header_size,size_t header_storage_size)2959 static struct fw_iso_context *ohci_allocate_iso_context(struct fw_card *card, int type, int channel,
2960 size_t header_size, size_t header_storage_size)
2961 {
2962 struct fw_ohci *ohci = fw_ohci(card);
2963 void *header __free(kvfree) = NULL;
2964 struct iso_context *ctx;
2965 descriptor_callback_t callback;
2966 u64 *channels;
2967 u32 *mask, regs;
2968 int index, ret = -EBUSY;
2969
2970 scoped_guard(spinlock_irq, &ohci->lock) {
2971 switch (type) {
2972 case FW_ISO_CONTEXT_TRANSMIT:
2973 mask = &ohci->it_context_mask;
2974 callback = handle_it_packet;
2975 index = ffs(*mask) - 1;
2976 if (index >= 0) {
2977 *mask &= ~(1 << index);
2978 regs = OHCI1394_IsoXmitContextBase(index);
2979 ctx = &ohci->it_context_list[index];
2980 }
2981 break;
2982
2983 case FW_ISO_CONTEXT_RECEIVE:
2984 channels = &ohci->ir_context_channels;
2985 mask = &ohci->ir_context_mask;
2986 callback = handle_ir_packet_per_buffer;
2987 index = *channels & 1ULL << channel ? ffs(*mask) - 1 : -1;
2988 if (index >= 0) {
2989 *channels &= ~(1ULL << channel);
2990 *mask &= ~(1 << index);
2991 regs = OHCI1394_IsoRcvContextBase(index);
2992 ctx = &ohci->ir_context_list[index];
2993 }
2994 break;
2995
2996 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
2997 mask = &ohci->ir_context_mask;
2998 callback = handle_ir_buffer_fill;
2999 index = !ohci->mc_allocated ? ffs(*mask) - 1 : -1;
3000 if (index >= 0) {
3001 ohci->mc_allocated = true;
3002 *mask &= ~(1 << index);
3003 regs = OHCI1394_IsoRcvContextBase(index);
3004 ctx = &ohci->ir_context_list[index];
3005 }
3006 break;
3007
3008 default:
3009 index = -1;
3010 ret = -ENOSYS;
3011 }
3012
3013 if (index < 0)
3014 return ERR_PTR(ret);
3015 }
3016
3017 memset(ctx, 0, sizeof(*ctx));
3018
3019 if (type != FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL) {
3020 ctx->sc.header_length = 0;
3021 header = kvmalloc(header_storage_size, GFP_KERNEL);
3022 if (!header) {
3023 ret = -ENOMEM;
3024 goto out;
3025 }
3026 }
3027
3028 ret = context_init(&ctx->context, ohci, regs, callback);
3029 if (ret < 0)
3030 goto out;
3031 fw_iso_context_init_work(&ctx->base, ohci_isoc_context_work);
3032
3033 if (type != FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL) {
3034 ctx->sc.header = no_free_ptr(header);
3035 } else {
3036 set_multichannel_mask(ohci, 0);
3037 ctx->mc.completed = 0;
3038 }
3039
3040 return &ctx->base;
3041 out:
3042 scoped_guard(spinlock_irq, &ohci->lock) {
3043 switch (type) {
3044 case FW_ISO_CONTEXT_RECEIVE:
3045 *channels |= 1ULL << channel;
3046 break;
3047
3048 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3049 ohci->mc_allocated = false;
3050 break;
3051 }
3052 *mask |= 1 << index;
3053 }
3054
3055 return ERR_PTR(ret);
3056 }
3057
ohci_start_iso(struct fw_iso_context * base,s32 cycle,u32 sync,u32 tags)3058 static int ohci_start_iso(struct fw_iso_context *base,
3059 s32 cycle, u32 sync, u32 tags)
3060 {
3061 struct iso_context *ctx = container_of(base, struct iso_context, base);
3062 struct fw_ohci *ohci = ctx->context.ohci;
3063 u32 control = IR_CONTEXT_ISOCH_HEADER, match;
3064 int index;
3065
3066 /* the controller cannot start without any queued packets */
3067 if (ctx->context.last->branch_address == 0)
3068 return -ENODATA;
3069
3070 switch (ctx->base.type) {
3071 case FW_ISO_CONTEXT_TRANSMIT:
3072 index = ctx - ohci->it_context_list;
3073 match = 0;
3074 if (cycle >= 0)
3075 match = IT_CONTEXT_CYCLE_MATCH_ENABLE |
3076 (cycle & 0x7fff) << 16;
3077
3078 reg_write(ohci, OHCI1394_IsoXmitIntEventClear, 1 << index);
3079 reg_write(ohci, OHCI1394_IsoXmitIntMaskSet, 1 << index);
3080 context_run(&ctx->context, match);
3081 break;
3082
3083 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3084 control |= IR_CONTEXT_BUFFER_FILL|IR_CONTEXT_MULTI_CHANNEL_MODE;
3085 fallthrough;
3086 case FW_ISO_CONTEXT_RECEIVE:
3087 index = ctx - ohci->ir_context_list;
3088 match = (tags << 28) | (sync << 8) | ctx->base.channel;
3089 if (cycle >= 0) {
3090 match |= (cycle & 0x07fff) << 12;
3091 control |= IR_CONTEXT_CYCLE_MATCH_ENABLE;
3092 }
3093
3094 reg_write(ohci, OHCI1394_IsoRecvIntEventClear, 1 << index);
3095 reg_write(ohci, OHCI1394_IsoRecvIntMaskSet, 1 << index);
3096 reg_write(ohci, CONTEXT_MATCH(ctx->context.regs), match);
3097 context_run(&ctx->context, control);
3098
3099 ctx->sync = sync;
3100 ctx->tags = tags;
3101
3102 break;
3103 }
3104
3105 return 0;
3106 }
3107
ohci_stop_iso(struct fw_iso_context * base)3108 static int ohci_stop_iso(struct fw_iso_context *base)
3109 {
3110 struct fw_ohci *ohci = fw_ohci(base->card);
3111 struct iso_context *ctx = container_of(base, struct iso_context, base);
3112 int index;
3113
3114 switch (ctx->base.type) {
3115 case FW_ISO_CONTEXT_TRANSMIT:
3116 index = ctx - ohci->it_context_list;
3117 reg_write(ohci, OHCI1394_IsoXmitIntMaskClear, 1 << index);
3118 break;
3119
3120 case FW_ISO_CONTEXT_RECEIVE:
3121 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3122 index = ctx - ohci->ir_context_list;
3123 reg_write(ohci, OHCI1394_IsoRecvIntMaskClear, 1 << index);
3124 break;
3125 }
3126 flush_writes(ohci);
3127 context_stop(&ctx->context);
3128
3129 return 0;
3130 }
3131
ohci_free_iso_context(struct fw_iso_context * base)3132 static void ohci_free_iso_context(struct fw_iso_context *base)
3133 {
3134 struct fw_ohci *ohci = fw_ohci(base->card);
3135 struct iso_context *ctx = container_of(base, struct iso_context, base);
3136 int index;
3137
3138 ohci_stop_iso(base);
3139 context_release(&ctx->context);
3140
3141 if (base->type != FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL) {
3142 kvfree(ctx->sc.header);
3143 ctx->sc.header = NULL;
3144 }
3145
3146 guard(spinlock_irqsave)(&ohci->lock);
3147
3148 switch (base->type) {
3149 case FW_ISO_CONTEXT_TRANSMIT:
3150 index = ctx - ohci->it_context_list;
3151 ohci->it_context_mask |= 1 << index;
3152 break;
3153
3154 case FW_ISO_CONTEXT_RECEIVE:
3155 index = ctx - ohci->ir_context_list;
3156 ohci->ir_context_mask |= 1 << index;
3157 ohci->ir_context_channels |= 1ULL << base->channel;
3158 break;
3159
3160 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3161 index = ctx - ohci->ir_context_list;
3162 ohci->ir_context_mask |= 1 << index;
3163 ohci->ir_context_channels |= ohci->mc_channels;
3164 ohci->mc_channels = 0;
3165 ohci->mc_allocated = false;
3166 break;
3167 }
3168 }
3169
ohci_set_iso_channels(struct fw_iso_context * base,u64 * channels)3170 static int ohci_set_iso_channels(struct fw_iso_context *base, u64 *channels)
3171 {
3172 struct fw_ohci *ohci = fw_ohci(base->card);
3173
3174 switch (base->type) {
3175 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3176 {
3177 guard(spinlock_irqsave)(&ohci->lock);
3178
3179 // Don't allow multichannel to grab other contexts' channels.
3180 if (~ohci->ir_context_channels & ~ohci->mc_channels & *channels) {
3181 *channels = ohci->ir_context_channels;
3182 return -EBUSY;
3183 } else {
3184 set_multichannel_mask(ohci, *channels);
3185 return 0;
3186 }
3187 }
3188 default:
3189 return -EINVAL;
3190 }
3191 }
3192
ohci_resume_iso_dma(struct fw_ohci * ohci)3193 static void __maybe_unused ohci_resume_iso_dma(struct fw_ohci *ohci)
3194 {
3195 int i;
3196 struct iso_context *ctx;
3197
3198 for (i = 0 ; i < ohci->n_ir ; i++) {
3199 ctx = &ohci->ir_context_list[i];
3200 if (ctx->context.running)
3201 ohci_start_iso(&ctx->base, 0, ctx->sync, ctx->tags);
3202 }
3203
3204 for (i = 0 ; i < ohci->n_it ; i++) {
3205 ctx = &ohci->it_context_list[i];
3206 if (ctx->context.running)
3207 ohci_start_iso(&ctx->base, 0, ctx->sync, ctx->tags);
3208 }
3209 }
3210
queue_iso_transmit(struct iso_context * ctx,struct fw_iso_packet * packet,struct fw_iso_buffer * buffer,unsigned long payload)3211 static int queue_iso_transmit(struct iso_context *ctx,
3212 struct fw_iso_packet *packet,
3213 struct fw_iso_buffer *buffer,
3214 unsigned long payload)
3215 {
3216 struct descriptor *d, *last, *pd;
3217 struct fw_iso_packet *p;
3218 __le32 *header;
3219 dma_addr_t d_bus;
3220 u32 z, header_z, payload_z, irq;
3221 u32 payload_index, payload_end_index, next_page_index;
3222 int page, end_page, i, length, offset;
3223
3224 p = packet;
3225 payload_index = payload;
3226
3227 if (p->skip)
3228 z = 1;
3229 else
3230 z = 2;
3231 if (p->header_length > 0)
3232 z++;
3233
3234 /* Determine the first page the payload isn't contained in. */
3235 end_page = PAGE_ALIGN(payload_index + p->payload_length) >> PAGE_SHIFT;
3236 if (p->payload_length > 0)
3237 payload_z = end_page - (payload_index >> PAGE_SHIFT);
3238 else
3239 payload_z = 0;
3240
3241 z += payload_z;
3242
3243 /* Get header size in number of descriptors. */
3244 header_z = DIV_ROUND_UP(p->header_length, sizeof(*d));
3245
3246 d = context_get_descriptors(&ctx->context, z + header_z, &d_bus);
3247 if (d == NULL)
3248 return -ENOMEM;
3249
3250 if (!p->skip) {
3251 d[0].control = cpu_to_le16(DESCRIPTOR_KEY_IMMEDIATE);
3252 d[0].req_count = cpu_to_le16(8);
3253 /*
3254 * Link the skip address to this descriptor itself. This causes
3255 * a context to skip a cycle whenever lost cycles or FIFO
3256 * overruns occur, without dropping the data. The application
3257 * should then decide whether this is an error condition or not.
3258 * FIXME: Make the context's cycle-lost behaviour configurable?
3259 */
3260 d[0].branch_address = cpu_to_le32(d_bus | z);
3261
3262 header = (__le32 *) &d[1];
3263
3264 ohci1394_it_data_set_speed(header, ctx->base.speed);
3265 ohci1394_it_data_set_tag(header, p->tag);
3266 ohci1394_it_data_set_channel(header, ctx->base.channel);
3267 ohci1394_it_data_set_tcode(header, TCODE_STREAM_DATA);
3268 ohci1394_it_data_set_sync(header, p->sy);
3269
3270 ohci1394_it_data_set_data_length(header, p->header_length + p->payload_length);
3271 }
3272
3273 if (p->header_length > 0) {
3274 d[2].req_count = cpu_to_le16(p->header_length);
3275 d[2].data_address = cpu_to_le32(d_bus + z * sizeof(*d));
3276 memcpy(&d[z], p->header, p->header_length);
3277 }
3278
3279 pd = d + z - payload_z;
3280 payload_end_index = payload_index + p->payload_length;
3281 for (i = 0; i < payload_z; i++) {
3282 page = payload_index >> PAGE_SHIFT;
3283 offset = payload_index & ~PAGE_MASK;
3284 next_page_index = (page + 1) << PAGE_SHIFT;
3285 length =
3286 min(next_page_index, payload_end_index) - payload_index;
3287 pd[i].req_count = cpu_to_le16(length);
3288
3289 dma_addr_t dma_addr = buffer->dma_addrs[page];
3290 pd[i].data_address = cpu_to_le32(dma_addr + offset);
3291
3292 dma_sync_single_range_for_device(ctx->context.ohci->card.device,
3293 dma_addr, offset, length,
3294 DMA_TO_DEVICE);
3295
3296 payload_index += length;
3297 }
3298
3299 if (p->interrupt)
3300 irq = DESCRIPTOR_IRQ_ALWAYS;
3301 else
3302 irq = DESCRIPTOR_NO_IRQ;
3303
3304 last = z == 2 ? d : d + z - 1;
3305 last->control |= cpu_to_le16(DESCRIPTOR_OUTPUT_LAST |
3306 DESCRIPTOR_STATUS |
3307 DESCRIPTOR_BRANCH_ALWAYS |
3308 irq);
3309
3310 context_append(&ctx->context, d, z, header_z);
3311
3312 return 0;
3313 }
3314
queue_iso_packet_per_buffer(struct iso_context * ctx,struct fw_iso_packet * packet,struct fw_iso_buffer * buffer,unsigned long payload)3315 static int queue_iso_packet_per_buffer(struct iso_context *ctx,
3316 struct fw_iso_packet *packet,
3317 struct fw_iso_buffer *buffer,
3318 unsigned long payload)
3319 {
3320 struct device *device = ctx->context.ohci->card.device;
3321 struct descriptor *d, *pd;
3322 dma_addr_t d_bus;
3323 u32 z, header_z, rest;
3324 int i, j, length;
3325 int page, offset, packet_count, header_size, payload_per_buffer;
3326
3327 /*
3328 * The OHCI controller puts the isochronous header and trailer in the
3329 * buffer, so we need at least 8 bytes.
3330 */
3331 packet_count = packet->header_length / ctx->base.header_size;
3332 header_size = max(ctx->base.header_size, (size_t)8);
3333
3334 /* Get header size in number of descriptors. */
3335 header_z = DIV_ROUND_UP(header_size, sizeof(*d));
3336 page = payload >> PAGE_SHIFT;
3337 offset = payload & ~PAGE_MASK;
3338 payload_per_buffer = packet->payload_length / packet_count;
3339
3340 for (i = 0; i < packet_count; i++) {
3341 /* d points to the header descriptor */
3342 z = DIV_ROUND_UP(payload_per_buffer + offset, PAGE_SIZE) + 1;
3343 d = context_get_descriptors(&ctx->context,
3344 z + header_z, &d_bus);
3345 if (d == NULL)
3346 return -ENOMEM;
3347
3348 d->control = cpu_to_le16(DESCRIPTOR_STATUS |
3349 DESCRIPTOR_INPUT_MORE);
3350 if (packet->skip && i == 0)
3351 d->control |= cpu_to_le16(DESCRIPTOR_WAIT);
3352 d->req_count = cpu_to_le16(header_size);
3353 d->res_count = d->req_count;
3354 d->transfer_status = 0;
3355 d->data_address = cpu_to_le32(d_bus + (z * sizeof(*d)));
3356
3357 rest = payload_per_buffer;
3358 pd = d;
3359 for (j = 1; j < z; j++) {
3360 pd++;
3361 pd->control = cpu_to_le16(DESCRIPTOR_STATUS |
3362 DESCRIPTOR_INPUT_MORE);
3363
3364 if (offset + rest < PAGE_SIZE)
3365 length = rest;
3366 else
3367 length = PAGE_SIZE - offset;
3368 pd->req_count = cpu_to_le16(length);
3369 pd->res_count = pd->req_count;
3370 pd->transfer_status = 0;
3371
3372 dma_addr_t dma_addr = buffer->dma_addrs[page];
3373 pd->data_address = cpu_to_le32(dma_addr + offset);
3374
3375 dma_sync_single_range_for_device(device, dma_addr,
3376 offset, length,
3377 DMA_FROM_DEVICE);
3378
3379 offset = (offset + length) & ~PAGE_MASK;
3380 rest -= length;
3381 if (offset == 0)
3382 page++;
3383 }
3384 pd->control = cpu_to_le16(DESCRIPTOR_STATUS |
3385 DESCRIPTOR_INPUT_LAST |
3386 DESCRIPTOR_BRANCH_ALWAYS);
3387 if (packet->interrupt && i == packet_count - 1)
3388 pd->control |= cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS);
3389
3390 context_append(&ctx->context, d, z, header_z);
3391 }
3392
3393 return 0;
3394 }
3395
queue_iso_buffer_fill(struct iso_context * ctx,struct fw_iso_packet * packet,struct fw_iso_buffer * buffer,unsigned long payload)3396 static int queue_iso_buffer_fill(struct iso_context *ctx,
3397 struct fw_iso_packet *packet,
3398 struct fw_iso_buffer *buffer,
3399 unsigned long payload)
3400 {
3401 struct descriptor *d;
3402 dma_addr_t d_bus;
3403 int page, offset, rest, z, i, length;
3404
3405 page = payload >> PAGE_SHIFT;
3406 offset = payload & ~PAGE_MASK;
3407 rest = packet->payload_length;
3408
3409 /* We need one descriptor for each page in the buffer. */
3410 z = DIV_ROUND_UP(offset + rest, PAGE_SIZE);
3411
3412 if (WARN_ON(offset & 3 || rest & 3 || page + z > buffer->page_count))
3413 return -EFAULT;
3414
3415 for (i = 0; i < z; i++) {
3416 d = context_get_descriptors(&ctx->context, 1, &d_bus);
3417 if (d == NULL)
3418 return -ENOMEM;
3419
3420 d->control = cpu_to_le16(DESCRIPTOR_INPUT_MORE |
3421 DESCRIPTOR_BRANCH_ALWAYS);
3422 if (packet->skip && i == 0)
3423 d->control |= cpu_to_le16(DESCRIPTOR_WAIT);
3424 if (packet->interrupt && i == z - 1)
3425 d->control |= cpu_to_le16(DESCRIPTOR_IRQ_ALWAYS);
3426
3427 if (offset + rest < PAGE_SIZE)
3428 length = rest;
3429 else
3430 length = PAGE_SIZE - offset;
3431 d->req_count = cpu_to_le16(length);
3432 d->res_count = d->req_count;
3433 d->transfer_status = 0;
3434
3435 dma_addr_t dma_addr = buffer->dma_addrs[page];
3436 d->data_address = cpu_to_le32(dma_addr + offset);
3437
3438 dma_sync_single_range_for_device(ctx->context.ohci->card.device,
3439 dma_addr, offset, length,
3440 DMA_FROM_DEVICE);
3441
3442 rest -= length;
3443 offset = 0;
3444 page++;
3445
3446 context_append(&ctx->context, d, 1, 0);
3447 }
3448
3449 return 0;
3450 }
3451
ohci_queue_iso(struct fw_iso_context * base,struct fw_iso_packet * packet,struct fw_iso_buffer * buffer,unsigned long payload)3452 static int ohci_queue_iso(struct fw_iso_context *base,
3453 struct fw_iso_packet *packet,
3454 struct fw_iso_buffer *buffer,
3455 unsigned long payload)
3456 {
3457 struct iso_context *ctx = container_of(base, struct iso_context, base);
3458
3459 guard(spinlock_irqsave)(&ctx->context.ohci->lock);
3460
3461 switch (base->type) {
3462 case FW_ISO_CONTEXT_TRANSMIT:
3463 return queue_iso_transmit(ctx, packet, buffer, payload);
3464 case FW_ISO_CONTEXT_RECEIVE:
3465 return queue_iso_packet_per_buffer(ctx, packet, buffer, payload);
3466 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3467 return queue_iso_buffer_fill(ctx, packet, buffer, payload);
3468 default:
3469 return -ENOSYS;
3470 }
3471 }
3472
ohci_flush_queue_iso(struct fw_iso_context * base)3473 static void ohci_flush_queue_iso(struct fw_iso_context *base)
3474 {
3475 struct context *ctx =
3476 &container_of(base, struct iso_context, base)->context;
3477
3478 reg_write(ctx->ohci, CONTROL_SET(ctx->regs), CONTEXT_WAKE);
3479 }
3480
ohci_flush_iso_completions(struct fw_iso_context * base)3481 static int ohci_flush_iso_completions(struct fw_iso_context *base)
3482 {
3483 struct iso_context *ctx = container_of(base, struct iso_context, base);
3484 int ret = 0;
3485
3486 if (!test_and_set_bit_lock(0, &ctx->flushing_completions)) {
3487 ohci_isoc_context_work(&base->work);
3488
3489 switch (base->type) {
3490 case FW_ISO_CONTEXT_TRANSMIT:
3491 case FW_ISO_CONTEXT_RECEIVE:
3492 if (ctx->sc.header_length != 0)
3493 flush_iso_completions(ctx, FW_ISO_CONTEXT_COMPLETIONS_CAUSE_FLUSH);
3494 break;
3495 case FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL:
3496 if (ctx->mc.completed != 0)
3497 flush_ir_buffer_fill(ctx);
3498 break;
3499 default:
3500 ret = -ENOSYS;
3501 }
3502
3503 clear_bit_unlock(0, &ctx->flushing_completions);
3504 smp_mb__after_atomic();
3505 }
3506
3507 return ret;
3508 }
3509
3510 static const struct fw_card_driver ohci_driver = {
3511 .enable = ohci_enable,
3512 .disable = ohci_disable,
3513 .read_phy_reg = ohci_read_phy_reg,
3514 .update_phy_reg = ohci_update_phy_reg,
3515 .set_config_rom = ohci_set_config_rom,
3516 .send_request = ohci_send_request,
3517 .send_response = ohci_send_response,
3518 .cancel_packet = ohci_cancel_packet,
3519 .enable_phys_dma = ohci_enable_phys_dma,
3520 .read_csr = ohci_read_csr,
3521 .write_csr = ohci_write_csr,
3522
3523 .allocate_iso_context = ohci_allocate_iso_context,
3524 .free_iso_context = ohci_free_iso_context,
3525 .set_iso_channels = ohci_set_iso_channels,
3526 .queue_iso = ohci_queue_iso,
3527 .flush_queue_iso = ohci_flush_queue_iso,
3528 .flush_iso_completions = ohci_flush_iso_completions,
3529 .start_iso = ohci_start_iso,
3530 .stop_iso = ohci_stop_iso,
3531 };
3532
3533 #ifdef CONFIG_PPC_PMAC
pmac_ohci_on(struct pci_dev * dev)3534 static void pmac_ohci_on(struct pci_dev *dev)
3535 {
3536 if (machine_is(powermac)) {
3537 struct device_node *ofn = pci_device_to_OF_node(dev);
3538
3539 if (ofn) {
3540 pmac_call_feature(PMAC_FTR_1394_CABLE_POWER, ofn, 0, 1);
3541 pmac_call_feature(PMAC_FTR_1394_ENABLE, ofn, 0, 1);
3542 }
3543 }
3544 }
3545
pmac_ohci_off(struct pci_dev * dev)3546 static void pmac_ohci_off(struct pci_dev *dev)
3547 {
3548 if (machine_is(powermac)) {
3549 struct device_node *ofn = pci_device_to_OF_node(dev);
3550
3551 if (ofn) {
3552 pmac_call_feature(PMAC_FTR_1394_ENABLE, ofn, 0, 0);
3553 pmac_call_feature(PMAC_FTR_1394_CABLE_POWER, ofn, 0, 0);
3554 }
3555 }
3556 }
3557 #else
pmac_ohci_on(struct pci_dev * dev)3558 static inline void pmac_ohci_on(struct pci_dev *dev) {}
pmac_ohci_off(struct pci_dev * dev)3559 static inline void pmac_ohci_off(struct pci_dev *dev) {}
3560 #endif /* CONFIG_PPC_PMAC */
3561
release_ohci(struct device * dev,void * data)3562 static void release_ohci(struct device *dev, void *data)
3563 {
3564 struct pci_dev *pdev = to_pci_dev(dev);
3565 struct fw_ohci *ohci = pci_get_drvdata(pdev);
3566
3567 pmac_ohci_off(pdev);
3568
3569 ar_context_release(&ohci->ar_response_ctx);
3570 ar_context_release(&ohci->ar_request_ctx);
3571
3572 dev_notice(dev, "removed fw-ohci device\n");
3573 }
3574
pci_probe(struct pci_dev * dev,const struct pci_device_id * ent)3575 static int pci_probe(struct pci_dev *dev,
3576 const struct pci_device_id *ent)
3577 {
3578 struct fw_ohci *ohci;
3579 u32 bus_options, max_receive, link_speed, version;
3580 u64 guid;
3581 int i, flags, irq, err;
3582
3583 if (dev->vendor == PCI_VENDOR_ID_PINNACLE_SYSTEMS) {
3584 dev_err(&dev->dev, "Pinnacle MovieBoard is not yet supported\n");
3585 return -ENOSYS;
3586 }
3587
3588 ohci = devres_alloc(release_ohci, sizeof(*ohci), GFP_KERNEL);
3589 if (ohci == NULL)
3590 return -ENOMEM;
3591 fw_card_initialize(&ohci->card, &ohci_driver, &dev->dev);
3592 pci_set_drvdata(dev, ohci);
3593 pmac_ohci_on(dev);
3594 devres_add(&dev->dev, ohci);
3595
3596 err = pcim_enable_device(dev);
3597 if (err) {
3598 dev_err(&dev->dev, "failed to enable OHCI hardware\n");
3599 return err;
3600 }
3601
3602 pci_set_master(dev);
3603 pci_write_config_dword(dev, OHCI1394_PCI_HCI_Control, 0);
3604
3605 spin_lock_init(&ohci->lock);
3606 mutex_init(&ohci->phy_reg_mutex);
3607
3608 if (!(pci_resource_flags(dev, 0) & IORESOURCE_MEM) ||
3609 pci_resource_len(dev, 0) < OHCI1394_REGISTER_SIZE) {
3610 ohci_err(ohci, "invalid MMIO resource\n");
3611 return -ENXIO;
3612 }
3613
3614 ohci->registers = pcim_iomap_region(dev, 0, ohci_driver_name);
3615 if (IS_ERR(ohci->registers)) {
3616 ohci_err(ohci, "request and map MMIO resource unavailable\n");
3617 return -ENXIO;
3618 }
3619
3620 for (i = 0; i < ARRAY_SIZE(ohci_quirks); i++)
3621 if ((ohci_quirks[i].vendor == dev->vendor) &&
3622 (ohci_quirks[i].device == (unsigned short)PCI_ANY_ID ||
3623 ohci_quirks[i].device == dev->device) &&
3624 (ohci_quirks[i].revision == (unsigned short)PCI_ANY_ID ||
3625 ohci_quirks[i].revision >= dev->revision)) {
3626 ohci->quirks = ohci_quirks[i].flags;
3627 break;
3628 }
3629 if (param_quirks)
3630 ohci->quirks = param_quirks;
3631
3632 if (detect_vt630x_with_asm1083_on_amd_ryzen_machine(dev))
3633 ohci->quirks |= QUIRK_REBOOT_BY_CYCLE_TIMER_READ;
3634
3635 /*
3636 * Because dma_alloc_coherent() allocates at least one page,
3637 * we save space by using a common buffer for the AR request/
3638 * response descriptors and the self IDs buffer.
3639 */
3640 BUILD_BUG_ON(AR_BUFFERS * sizeof(struct descriptor) > PAGE_SIZE/4);
3641 BUILD_BUG_ON(SELF_ID_BUF_SIZE > PAGE_SIZE/2);
3642 ohci->misc_buffer = dmam_alloc_coherent(&dev->dev, PAGE_SIZE, &ohci->misc_buffer_bus,
3643 GFP_KERNEL);
3644 if (!ohci->misc_buffer)
3645 return -ENOMEM;
3646
3647 err = ar_context_init(&ohci->ar_request_ctx, ohci, 0,
3648 OHCI1394_AsReqRcvContextControlSet);
3649 if (err < 0)
3650 return err;
3651
3652 err = ar_context_init(&ohci->ar_response_ctx, ohci, PAGE_SIZE/4,
3653 OHCI1394_AsRspRcvContextControlSet);
3654 if (err < 0)
3655 return err;
3656
3657 err = context_init(&ohci->at_request_ctx.context, ohci,
3658 OHCI1394_AsReqTrContextControlSet, handle_at_packet);
3659 if (err < 0)
3660 return err;
3661 INIT_WORK(&ohci->at_request_ctx.work, ohci_at_context_work);
3662
3663 err = context_init(&ohci->at_response_ctx.context, ohci,
3664 OHCI1394_AsRspTrContextControlSet, handle_at_packet);
3665 if (err < 0)
3666 return err;
3667 INIT_WORK(&ohci->at_response_ctx.work, ohci_at_context_work);
3668
3669 reg_write(ohci, OHCI1394_IsoRecvIntMaskSet, ~0);
3670 ohci->ir_context_channels = ~0ULL;
3671 ohci->ir_context_support = reg_read(ohci, OHCI1394_IsoRecvIntMaskSet);
3672 reg_write(ohci, OHCI1394_IsoRecvIntMaskClear, ~0);
3673 ohci->ir_context_mask = ohci->ir_context_support;
3674 ohci->n_ir = hweight32(ohci->ir_context_mask);
3675 ohci->ir_context_list = devm_kcalloc(&dev->dev, ohci->n_ir, sizeof(struct iso_context), GFP_KERNEL);
3676 if (!ohci->ir_context_list)
3677 return -ENOMEM;
3678
3679 reg_write(ohci, OHCI1394_IsoXmitIntMaskSet, ~0);
3680 ohci->it_context_support = reg_read(ohci, OHCI1394_IsoXmitIntMaskSet);
3681 /* JMicron JMB38x often shows 0 at first read, just ignore it */
3682 if (!ohci->it_context_support) {
3683 ohci_notice(ohci, "overriding IsoXmitIntMask\n");
3684 ohci->it_context_support = 0xf;
3685 }
3686 reg_write(ohci, OHCI1394_IsoXmitIntMaskClear, ~0);
3687 ohci->it_context_mask = ohci->it_context_support;
3688 ohci->n_it = hweight32(ohci->it_context_mask);
3689 ohci->it_context_list = devm_kcalloc(&dev->dev, ohci->n_it, sizeof(struct iso_context), GFP_KERNEL);
3690 if (!ohci->it_context_list)
3691 return -ENOMEM;
3692
3693 ohci->self_id = ohci->misc_buffer + PAGE_SIZE/2;
3694 ohci->self_id_bus = ohci->misc_buffer_bus + PAGE_SIZE/2;
3695
3696 bus_options = reg_read(ohci, OHCI1394_BusOptions);
3697 max_receive = (bus_options >> 12) & 0xf;
3698 link_speed = bus_options & 0x7;
3699 guid = ((u64) reg_read(ohci, OHCI1394_GUIDHi) << 32) |
3700 reg_read(ohci, OHCI1394_GUIDLo);
3701
3702 flags = PCI_IRQ_INTX;
3703 if (!(ohci->quirks & QUIRK_NO_MSI))
3704 flags |= PCI_IRQ_MSI;
3705 err = pci_alloc_irq_vectors(dev, 1, 1, flags);
3706 if (err < 0)
3707 return err;
3708 irq = pci_irq_vector(dev, 0);
3709 if (irq < 0) {
3710 err = irq;
3711 goto fail_msi;
3712 }
3713
3714 // IRQF_ONESHOT is not applied so that any events are handled in the hardIRQ handler during
3715 // invoking the threaded IRQ handler for SelfIDComplete event.
3716 err = request_threaded_irq(irq, irq_handler, handle_selfid_complete_event,
3717 pci_dev_msi_enabled(dev) ? 0 : IRQF_SHARED, ohci_driver_name,
3718 ohci);
3719 if (err < 0) {
3720 ohci_err(ohci, "failed to allocate interrupt %d\n", irq);
3721 goto fail_msi;
3722 }
3723
3724 err = fw_card_add(&ohci->card, max_receive, link_speed, guid, ohci->n_it + ohci->n_ir);
3725 if (err)
3726 goto fail_irq;
3727
3728 version = reg_read(ohci, OHCI1394_Version) & 0x00ff00ff;
3729 ohci_notice(ohci,
3730 "added OHCI v%x.%x device as card %d, "
3731 "%d IR + %d IT contexts, quirks 0x%x%s\n",
3732 version >> 16, version & 0xff, ohci->card.index,
3733 ohci->n_ir, ohci->n_it, ohci->quirks,
3734 reg_read(ohci, OHCI1394_PhyUpperBound) ?
3735 ", physUB" : "");
3736
3737 return 0;
3738
3739 fail_irq:
3740 free_irq(irq, ohci);
3741 fail_msi:
3742 pci_free_irq_vectors(dev);
3743
3744 return err;
3745 }
3746
pci_remove(struct pci_dev * dev)3747 static void pci_remove(struct pci_dev *dev)
3748 {
3749 struct fw_ohci *ohci = pci_get_drvdata(dev);
3750 int irq;
3751
3752 fw_core_remove_card(&ohci->card);
3753
3754 software_reset(ohci);
3755
3756 irq = pci_irq_vector(dev, 0);
3757 if (irq >= 0)
3758 free_irq(irq, ohci);
3759 pci_free_irq_vectors(dev);
3760
3761 dev_notice(&dev->dev, "removing fw-ohci device\n");
3762 }
3763
pci_suspend(struct device * dev)3764 static int __maybe_unused pci_suspend(struct device *dev)
3765 {
3766 struct pci_dev *pdev = to_pci_dev(dev);
3767 struct fw_ohci *ohci = pci_get_drvdata(pdev);
3768
3769 software_reset(ohci);
3770 pmac_ohci_off(pdev);
3771
3772 return 0;
3773 }
3774
3775
pci_resume(struct device * dev)3776 static int __maybe_unused pci_resume(struct device *dev)
3777 {
3778 struct pci_dev *pdev = to_pci_dev(dev);
3779 struct fw_ohci *ohci = pci_get_drvdata(pdev);
3780 int err;
3781
3782 pmac_ohci_on(pdev);
3783
3784 /* Some systems don't setup GUID register on resume from ram */
3785 if (!reg_read(ohci, OHCI1394_GUIDLo) &&
3786 !reg_read(ohci, OHCI1394_GUIDHi)) {
3787 reg_write(ohci, OHCI1394_GUIDLo, (u32)ohci->card.guid);
3788 reg_write(ohci, OHCI1394_GUIDHi, (u32)(ohci->card.guid >> 32));
3789 }
3790
3791 err = ohci_enable(&ohci->card, NULL, 0);
3792 if (err)
3793 return err;
3794
3795 ohci_resume_iso_dma(ohci);
3796
3797 return 0;
3798 }
3799
3800 static const struct pci_device_id pci_table[] = {
3801 { PCI_DEVICE_CLASS(PCI_CLASS_SERIAL_FIREWIRE_OHCI, ~0) },
3802 { }
3803 };
3804
3805 MODULE_DEVICE_TABLE(pci, pci_table);
3806
3807 static SIMPLE_DEV_PM_OPS(pci_pm_ops, pci_suspend, pci_resume);
3808
3809 static struct pci_driver fw_ohci_pci_driver = {
3810 .name = ohci_driver_name,
3811 .id_table = pci_table,
3812 .probe = pci_probe,
3813 .remove = pci_remove,
3814 .driver.pm = &pci_pm_ops,
3815 };
3816
fw_ohci_init(void)3817 static int __init fw_ohci_init(void)
3818 {
3819 return pci_register_driver(&fw_ohci_pci_driver);
3820 }
3821
fw_ohci_cleanup(void)3822 static void __exit fw_ohci_cleanup(void)
3823 {
3824 pci_unregister_driver(&fw_ohci_pci_driver);
3825 }
3826
3827 module_init(fw_ohci_init);
3828 module_exit(fw_ohci_cleanup);
3829
3830 MODULE_AUTHOR("Kristian Hoegsberg <krh@bitplanet.net>");
3831 MODULE_DESCRIPTION("Driver for PCI OHCI IEEE1394 controllers");
3832 MODULE_LICENSE("GPL");
3833
3834 /* Provide a module alias so root-on-sbp2 initrds don't break. */
3835 MODULE_ALIAS("ohci1394");
3836